150 Data Analysis jobs in Dubai

JUNIOR DATA SCIENTIST

Dubai, Dubai Cobblestone Energy

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Job Description

Starting salary of USD 60,000 per annum + performance based bonus - 0% tax environment

Job Location: Dubai, UAE (We provide visa sponsorship & relocation assistance)

About Cobblestone Energy

Cobblestone Energy is an energy trading company specialising in the European Gas and Power markets. Established in 2017, we combine deep analytics, advanced data science, and agile technology to drive profitable trading decisions and support the transition to renewables. Our flat organisational structure empowers every team member with autonomy and ownership, and our diverse, global team of extraordinary talent is united by a relentless pursuit of excellence.

Cobblestone Values

  • Lifelong learning with continuous reflection
  • Independent thinking through a meritocracy of ideas
  • The team is more important than the individual.
  • Being the best in any market we enter
  • Hiring and keeping only the most effective people
  • Others must benefit from our existence.

What we offer in this role

  • A full-time position on our Commercial team
  • Committed and remarkably talented colleagues.
  • Highly competitive compensation dependent on performance
  • An exciting, challenging and fulfilling career.
  • Investment in your development to ensure that you always remain the best in business.
  • Equity participation for strong contributors, ensuring our interests are all aligned long term.

Key Responsibilities:

  • Data Preparation: Collect, clean, and structure large datasets from market, fundamental, and operational sources
  • Forecasting & Modeling: Develop and validate predictive models (e.g. wind generation, demand) to support trading strategies
  • Strategy Research: Prototype, back-test, and refine data-driven trading ideas; collaborate with analytics and development teams to productionise solutions
  • Infrastructure: Build and maintain data pipelines, dashboards, and automated tooling to streamline workflows
  • Collaboration: Partner with traders, risk managers, and software engineers to integrate insights into real-time decision-making
  • Documentation: Maintain clear records of methodologies, data definitions, and model specifications
  • Culture: Champion our values through proactive communication and teamwork

Your background:

  • Bachelor's or master's degree in Computer Science, Mathematics, Statistics, or a related field
  • Strong proficiency in programming languages such as Python and R
  • Experience with data analysis and manipulation tools such as Pandas, NumPy, and SQL
  • Knowledge of data visualization tools such as Matplotlib and Seaborn
  • Experience that demonstrates your team-oriented, innovative, and strategic working styles.
  • Pro-active and flexible work mentality
  • Fluency in English, both written and spoken.

Preferred Background:

  • Proven track record of excellence, academic or professional, in quantitative or analytical roles
  • Experience working with time-series data, machine learning libraries, or cloud-based data platforms
  • Demonstrated ability to innovate and drive end-to-end solutions

The Hiring Process

  • Application Review
  • Online Assessments: Psychometric and logical reasoning tests
  • Case Study: Research-oriented project to showcase your analytical approach
  • Remote Interviews: Three rounds with members of our Analytics and Trading teams
  • Offer & Onboarding: Join our Commercial Development Program, then step directly into your role as Junior Data Scientist

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Present up to three academic, professional, or personal achievements that illustrate your ability to excel in demanding analytical settings. For each, specify the objective, the actions you took, and the measurable outcome. (Maximum 150 words) *

Select a recent extreme-weather event and:(i) identify the precise energy product or contract you would trade and the intended direction (long/short);(ii) state one back-of-envelope quantitative rationale; and(iii) cite the key risk indicator you would monitor to validate or adjust the position.(Maximum 120 words) *

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Explain what specifically attracts you to Cobblestone's data science team in Dubai and how this opportunity aligns with your long-term career aspirations.(Maximum 120 words) *

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Please account for your notice period (months or weeks that you may need to prepare exit of your current endeavors in order to start)

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Data Analysis Professional

Dubai, Dubai beBeeDataAnalysis

Posted today

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Job Description

Pharmaceutical Data Analyst Position

We are seeking a highly motivated and detail-oriented Pharmaceutical Data Analyst to join our dynamic team. As a key member of the Commercial Operations department, you will have the opportunity to contribute to the transformation, harmonization, and continuous improvement of analysis and insights creation by leveraging innovative data platforms to deliver actionable insights to the business.

Key Responsibilities
  • Develop and implement data analytics solutions to drive business decisions
  • Analyze complex data sets to identify trends and opportunities for growth
  • Collaborate with cross-functional teams to integrate data insights into business strategies
Requirements
  • Bachelor's degree in Data Science, Statistics, or related field
  • Proficiency in data analysis tools and technologies such as Excel, SQL, and Tableau
  • Strong analytical and problem-solving skills
What We Offer
  • A competitive salary and benefits package
  • Ongoing training and development opportunities
  • A collaborative and dynamic work environment
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Head - Data Analysis

Dubai, Dubai Peergrowth Consultancy Co.

Posted 3 days ago

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Job Description

The Director of Data Analysis is responsible for collecting, processing, and analysing real estate data from various sources, with the aim of providing accurate, data-driven insights that support strategic decision-making in the real estate sector in United Arab Emirates. The role focuses on enhancing market transparency, developing sector-wide performance indicators, and supporting policy formulation and investment planning based on data.

Responsibilities

  • Collecting and analyzing real estate data from multiple sources
  • Processing and cleaning data to ensure its accuracy, consistency, and readiness for analysis
  • Analyzing real estate data to extract and update the real estate index, which enhances market transparency
  • Preparing reports and dashboards to support strategic decision-making
  • Developing sector performance indicators (e.g., price indices, supply and demand, occupancy rates, etc.)
  • Supporting policy development and investment planning by providing data-driven recommendations
  • Contributing to real estate market studies and identifying market trends to support and update strategic urban development plans
  • Collaborating with government entities and investors to provide transparent and accurate insights into the real estate market

Requirements

  • Bachelor's degree in Economics, Statistics, Business Administration, Data Analysis, or a related field.
  • 5 years of experience in data analysis or market research, with knowledge of the real estate market.
  • Certifications in data analysis or economics are not required but are preferred
  • Certifications in Data Analysis, such as RICS or CF
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Course: Effective Business Decisions Using Data Analysis

Dubai, Dubai Europeanqualitytc

Posted today

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Job Description

Effective Business Decisions Using Data Analysis

ID 257

Course: Effective Business Decisions Using Data Analysis

This interactive, applications-driven 5-day course will highlight the added value that data analytics can offer a professional as a decision support tool in management decision making. It will show the use of data analytics to support strategic initiatives; to inform on policy information; and to direct operational decision making. The course will emphasize applications of data analytics in management practice; focus on the valid interpretation of data analytics findings; and create a clearer understanding of how to integrate quantitative reasoning into management decision making. Exposure to the discipline of data analytics will ultimately promote greater confidence in the use of evidence-based information to support management decision making.

This course will feature:
  • Discussions on applications of data analytics in management
  • The importance of data in data analytics
  • Applying data analytical methods through worked examples
  • Focusing on management interpretation of statistical evidence
  • How to integrate statistical thinking into the work domain
What are the Goals? By the end of this course, participants will be able to:
  • Explain the scope and structure of data analytics.
  • Apply a cross-section of useful data analytics.
  • Interpret meaningfully and critically assess statistical evidence.
  • Identify relevant applications of data analytics in practice.
Who is this Course for? This course is suitable to a wide range of professionals but will greatly benefit:
  • Professionals in management support roles
  • Analysts who typically encounter data/analytical information regularly in their work environment
  • Those who seek to derive greater decision-making value from data analytics
How will this be Presented?

This course will utilise a variety of proven adult learning techniques to ensure maximum understanding, comprehension, and retention of the information presented. The daily workshops will be highly interactive and participative. This involves regular discussion of applications as well as hands-on exposure to data analytics techniques using Microsoft Excel. Delegates are strongly encouraged to bring and analyse data from their own work domain. This adds greater relevancy to the content. Emphasis is also placed on the valid interpretation of statistical evidence in a management context.

The Course Content
  • Day One: Setting the Statistical Scene in Management
    • Introduction; The quantitative landscape in management
    • Thinking statistically about applications in management (identifying KPIs)
    • The integrative elements of data analytics
    • Data: The raw material of data analytics (types, quality, and data preparation)
    • Exploratory data analysis using Excel (pivot tables)
    • Using summary tables and visual displays to profile sample data
  • Day Two: Evidence-based Observational Decision Making
    • Numeric descriptors to profile numeric sample data
    • Central and non-central location measures
    • Quantifying dispersion in sample data
    • Examine the distribution of numeric measures (skewness and bimodal)
    • Exploring relationships between numeric descriptors
    • Breakdown analysis of numeric measures
  • Day Three: Statistical Decision Making – Drawing Inferences from Sample Data
    • The foundations of statistical inference
    • Quantifying uncertainty in data – the normal probability distribution
    • The importance of sampling in inferential analysis
    • Sampling methods (random-based sampling techniques)
    • Understanding the sampling distribution concept
    • Confidence interval estimation
  • Day Four: Statistical Decision Making – Drawing Inferences from Hypotheses Testing
    • The rationale of hypotheses testing
    • The hypothesis testing process and types of errors
    • Single population tests (tests for a single mean)
    • Two independent population tests of means
    • Matched pairs test scenarios
    • Comparing means across multiple populations
  • Day Five: Predictive Decision Making - Statistical Modeling and Data Mining
    • Exploiting statistical relationships to build prediction-based models
    • Model building using regression analysis
    • Model building process – the rationale and evaluation of regression models
    • Data mining overview – its evolution
    • Descriptive data mining – applications in management
    • Predictive (goal-directed) data mining – management applications
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Course: Effective Business Decisions Using Data Analysis

Dubai, Dubai Europeanqualitytc

Posted today

Job Viewed

Tap Again To Close

Job Description

Effective Business Decisions Using Data Analysis

ID 257

Course: Effective Business Decisions Using Data Analysis

This interactive, applications-driven 5-day course will highlight the added value that data analytics can offer a professional as a decision support tool in management decision making. It will show the use of data analytics to support strategic initiatives; to inform on policy information; and to direct operational decision making. The course will emphasize applications of data analytics in management practice; focus on the valid interpretation of data analytics findings; and create a clearer understanding of how to integrate quantitative reasoning into management decision making. Exposure to the discipline of data analytics will ultimately promote greater confidence in the use of evidence-based information to support management decision making.

This course will feature:
  • Discussions on applications of data analytics in management
  • The importance of data in data analytics
  • Applying data analytical methods through worked examples
  • Focusing on management interpretation of statistical evidence
  • How to integrate statistical thinking into the work domain
What are the Goals? By the end of this course, participants will be able to:
  • Explain the scope and structure of data analytics.
  • Apply a cross-section of useful data analytics.
  • Interpret meaningfully and critically assess statistical evidence.
  • Identify relevant applications of data analytics in practice.
Who is this Course for? This course is suitable to a wide range of professionals but will greatly benefit:
  • Professionals in management support roles
  • Analysts who typically encounter data/analytical information regularly in their work environment
  • Those who seek to derive greater decision-making value from data analytics
How will this be Presented?

This course will utilise a variety of proven adult learning techniques to ensure maximum understanding, comprehension, and retention of the information presented. The daily workshops will be highly interactive and participative. This involves regular discussion of applications as well as hands-on exposure to data analytics techniques using Microsoft Excel. Delegates are strongly encouraged to bring and analyse data from their own work domain. This adds greater relevancy to the content. Emphasis is also placed on the valid interpretation of statistical evidence in a management context.

The Course Content
  • Day One: Setting the Statistical Scene in Management
    • Introduction; The quantitative landscape in management
    • Thinking statistically about applications in management (identifying KPIs)
    • The integrative elements of data analytics
    • Data: The raw material of data analytics (types, quality, and data preparation)
    • Exploratory data analysis using Excel (pivot tables)
    • Using summary tables and visual displays to profile sample data
  • Day Two: Evidence-based Observational Decision Making
    • Numeric descriptors to profile numeric sample data
    • Central and non-central location measures
    • Quantifying dispersion in sample data
    • Examine the distribution of numeric measures (skewness and bimodal)
    • Exploring relationships between numeric descriptors
    • Breakdown analysis of numeric measures
  • Day Three: Statistical Decision Making – Drawing Inferences from Sample Data
    • The foundations of statistical inference
    • Quantifying uncertainty in data – the normal probability distribution
    • The importance of sampling in inferential analysis
    • Sampling methods (random-based sampling techniques)
    • Understanding the sampling distribution concept
    • Confidence interval estimation
  • Day Four: Statistical Decision Making – Drawing Inferences from Hypotheses Testing
    • The rationale of hypotheses testing
    • The hypothesis testing process and types of errors
    • Single population tests (tests for a single mean)
    • Two independent population tests of means
    • Matched pairs test scenarios
    • Comparing means across multiple populations
  • Day Five: Predictive Decision Making - Statistical Modeling and Data Mining
    • Exploiting statistical relationships to build prediction-based models
    • Model building using regression analysis
    • Model building process – the rationale and evaluation of regression models
    • Data mining overview – its evolution
    • Descriptive data mining – applications in management
    • Predictive (goal-directed) data mining – management applications
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Director Data Scientist - Analysis - Growth

Dubai, Dubai Delivery Hero Austria

Posted today

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Job Description

About the opportunity

The Growth Data Science Director will lead and accelerate growth strategies across marketing optimization, product initiatives (e.g., churn reduction), ecosystem plays, and ads revenue for talabat and Quick commerce. This role requires collaboration with product teams, senior marketing, and partner leadership to drive data-driven decisions and business growth.

What’s On Your Plate?

  • Data Science: Define and execute data strategies aligned with company goals, leading cross-functional teams to develop innovative data-driven products and insights that impact business outcomes.
  • Strategic Leadership and Business Acumen: Demonstrate strategic leadership, articulate vision, and incorporate emerging trends and technologies to add value.
  • Collaboration and Influence: Work with stakeholders including executives, product managers, engineers, and external partners; represent the organization at industry events.
  • Resource Management: Manage teams, budgets, and resources; prioritize projects; coach and mentor managers.
  • Strategic Hiring and Talent Development: Recruit, develop career paths, and provide feedback to team members.
  • Organizational Change Management: Lead change initiatives, communicate effectively, and manage resistance.

What you need to be successful

  • 8-10+ years in data science, with leadership experience in managing teams or consulting.
  • Ph.D. or Master’s in relevant fields such as computer science, statistics, or data science.
  • Proven leadership in fostering high-performance teams and applying data science skills to create impactful products and insights.
  • Deep knowledge of statistics, causality, experimentation, and modeling.
  • Business acumen with experience in quantifying impact through data initiatives.
  • Strategic thinking and ability to develop data-driven roadmaps aligned with organizational goals.

Who we are

Since 2004, talabat has been Kuwait’s leading on-demand food and Q-commerce app, serving eight countries. We leverage technology to simplify life, optimize operations, and provide earning opportunities. We foster a high-performance culture, value authenticity, and are proud of our awards and diverse team of over 6,000 Talabaty committed to making a difference.

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Director Data Scientist - Analysis - Growth

Dubai, Dubai Delivery Hero Austria

Posted today

Job Viewed

Tap Again To Close

Job Description

About the opportunity

The Growth Data Science Director will lead and accelerate growth strategies across marketing optimization, product initiatives (e.g., churn reduction), ecosystem plays, and ads revenue for talabat and Quick commerce. This role requires collaboration with product teams, senior marketing, and partner leadership to drive data-driven decisions and business growth.

What’s On Your Plate?

  • Data Science: Define and execute data strategies aligned with company goals, leading cross-functional teams to develop innovative data-driven products and insights that impact business outcomes.
  • Strategic Leadership and Business Acumen: Demonstrate strategic leadership, articulate vision, and incorporate emerging trends and technologies to add value.
  • Collaboration and Influence: Work with stakeholders including executives, product managers, engineers, and external partners; represent the organization at industry events.
  • Resource Management: Manage teams, budgets, and resources; prioritize projects; coach and mentor managers.
  • Strategic Hiring and Talent Development: Recruit, develop career paths, and provide feedback to team members.
  • Organizational Change Management: Lead change initiatives, communicate effectively, and manage resistance.

What you need to be successful

  • 8-10+ years in data science, with leadership experience in managing teams or consulting.
  • Ph.D. or Master’s in relevant fields such as computer science, statistics, or data science.
  • Proven leadership in fostering high-performance teams and applying data science skills to create impactful products and insights.
  • Deep knowledge of statistics, causality, experimentation, and modeling.
  • Business acumen with experience in quantifying impact through data initiatives.
  • Strategic thinking and ability to develop data-driven roadmaps aligned with organizational goals.

Who we are

Since 2004, talabat has been Kuwait’s leading on-demand food and Q-commerce app, serving eight countries. We leverage technology to simplify life, optimize operations, and provide earning opportunities. We foster a high-performance culture, value authenticity, and are proud of our awards and diverse team of over 6,000 Talabaty committed to making a difference.

#J-18808-Ljbffr
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Data Scientist II - Analysis, Lifecycle

Dubai, Dubai Delivery Hero Austria

Posted today

Job Viewed

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Job Description

Role Summary

As the leading delivery company in the region we have a great responsibility and opportunity to impact the lives of millions of customers, restaurant partners, and riders. To realize our potential we need to advance our platform to become much more intelligent in how it understands and serves our users.
As a data scientist on the analysis track your mission will be to improve the quality of the decisions made across product and business via relevant, reliable, and actionable data. You will own a particular domain across product and business and will work closely with the corresponding product and business managers as part of a talented team of data scientists and data engineers. You will own the entire data value chain including logging, data modeling, analysis, reporting, and experimentation.

Whats On Your Plate

  • Leveraging ambiguous business problems as opportunities to drive objective criteria using data.
  • Developing a deep understanding of the product experiences and business processes that make up your area of focus.
  • Developing a deep familiarity with the source data and its generating systems through documentation, interacting with the engineering teams, and systematic data profiling.
  • Contributing heavily to the design and maintenance of the data models that allow us to measure performance and comprehend performance drivers for your area of focus.
  • Working closely with product and business teams to identify important questions that can be answered effectively with data.
  • Delivering well-formed, relevant, reliable, and actionable insights and recommendations to support data-driven decision making through deep analysis and automated reports.
  • Designing, planning, and analyzing experiments (A/B and multivariate tests).
  • Supporting product and business managers with KPI design and goal setting.
  • Mentoring other data scientists in their growth journeys.
  • Contributing to improving our ways of work, our tooling, and our internal training programs.

What Did We Order
Technical Experience

  • Excellent SQL.
  • Competence with reproducible data analysis using Python or R.
  • Familiarity with data modeling and dimensional design.
  • Strong command over the entire data analysis lifecycle including problem formulation, data auditing, rigorous analysis, interpretation, recommendations, and presentation.
  • Familiarity with different types of analysis including descriptive, exploratory, inferential, causal, and predictive analysis.
  • Deep understanding of the various experiment design and analysis workflows and the corresponding statistical techniques.
  • Familiarity with product data (impressions, events) and product health measurement (conversion, engagement, retention).
  • Familiarity with BigQuery and the Google Cloud Platform is a plus.
  • Data engineering and data pipeline development experience (e.g. via Airflow) is a plus.
  • Experience with classical ML frameworks (e.g. Scikit-learn, XGBoost, LightGBM) is a plus.

Qualifications:

  • Bachelor's degree in engineering, computer science, technology, or similar fields. A postgraduate degree is a plus but not required.
  • 3 years of overall experience working in data science and machine learning.
  • Experience doing data science in an online consumer product setting is a plus.
  • A good problem solver with a figure-it-out growth mindset.
  • An excellent collaborator.
  • An excellent communicator.
  • A strong sense of ownership and accountability.
  • A keep-it-simple approach to #makeithappen.

Remote Work:

No

Employment Type:

Full-time

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Data Scientist II - Analysis, Lifecycle

Dubai, Dubai Delivery Hero Austria

Posted today

Job Viewed

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Job Description

Role Summary

As the leading delivery company in the region we have a great responsibility and opportunity to impact the lives of millions of customers, restaurant partners, and riders. To realize our potential we need to advance our platform to become much more intelligent in how it understands and serves our users.
As a data scientist on the analysis track your mission will be to improve the quality of the decisions made across product and business via relevant, reliable, and actionable data. You will own a particular domain across product and business and will work closely with the corresponding product and business managers as part of a talented team of data scientists and data engineers. You will own the entire data value chain including logging, data modeling, analysis, reporting, and experimentation.

Whats On Your Plate

  • Leveraging ambiguous business problems as opportunities to drive objective criteria using data.
  • Developing a deep understanding of the product experiences and business processes that make up your area of focus.
  • Developing a deep familiarity with the source data and its generating systems through documentation, interacting with the engineering teams, and systematic data profiling.
  • Contributing heavily to the design and maintenance of the data models that allow us to measure performance and comprehend performance drivers for your area of focus.
  • Working closely with product and business teams to identify important questions that can be answered effectively with data.
  • Delivering well-formed, relevant, reliable, and actionable insights and recommendations to support data-driven decision making through deep analysis and automated reports.
  • Designing, planning, and analyzing experiments (A/B and multivariate tests).
  • Supporting product and business managers with KPI design and goal setting.
  • Mentoring other data scientists in their growth journeys.
  • Contributing to improving our ways of work, our tooling, and our internal training programs.

What Did We Order
Technical Experience

  • Excellent SQL.
  • Competence with reproducible data analysis using Python or R.
  • Familiarity with data modeling and dimensional design.
  • Strong command over the entire data analysis lifecycle including problem formulation, data auditing, rigorous analysis, interpretation, recommendations, and presentation.
  • Familiarity with different types of analysis including descriptive, exploratory, inferential, causal, and predictive analysis.
  • Deep understanding of the various experiment design and analysis workflows and the corresponding statistical techniques.
  • Familiarity with product data (impressions, events) and product health measurement (conversion, engagement, retention).
  • Familiarity with BigQuery and the Google Cloud Platform is a plus.
  • Data engineering and data pipeline development experience (e.g. via Airflow) is a plus.
  • Experience with classical ML frameworks (e.g. Scikit-learn, XGBoost, LightGBM) is a plus.

Qualifications:

  • Bachelor's degree in engineering, computer science, technology, or similar fields. A postgraduate degree is a plus but not required.
  • 3 years of overall experience working in data science and machine learning.
  • Experience doing data science in an online consumer product setting is a plus.
  • A good problem solver with a figure-it-out growth mindset.
  • An excellent collaborator.
  • An excellent communicator.
  • A strong sense of ownership and accountability.
  • A keep-it-simple approach to #makeithappen.

Remote Work:

No

Employment Type:

Full-time

#J-18808-Ljbffr
This advertiser has chosen not to accept applicants from your region.

Data Scientist II - Analysis (Analytics Engineering)

Dubai, Dubai Delivery Hero

Posted 3 days ago

Job Viewed

Tap Again To Close

Job Description

About the opportunity

Role Summary

As the leading delivery company in the region, we have a great responsibility and opportunity to impact the lives of millions of customers, restaurant partners, and riders. To realize our potential, we need to advance our platform to become much more intelligent in how it understands and serves our users.
As a data scientist on the analysis track, your mission will be to improve the quality of the decisions made across product and business via relevant, reliable, and actionable data. You will own a particular domain across product and business and will work closely with the corresponding product and business managers as part of a talented team of data scientists and data engineers. You will own the entire data value chain including logging, data modeling, analysis, reporting, and experimentation.

What’s On Your Plate?

  • Leveraging ambiguous business problems as opportunities to drive objective criteria using data.
  • Developing a deep understanding of the product experiences and business processes that make up your area of focus.
  • Developing a deep familiarity with the source data and its generating systems through documentation, interacting with the engineering teams, and systematic data profiling.
  • Contributing heavily to the design and maintenance of the data models that allow us to measure performance and comprehend performance drivers for your area of focus.
  • Working closely with product and business teams to identify important questions that can be answered effectively with data.
  • Delivering well-formed, relevant, reliable, and actionable insights and recommendations to support data-driven decision making through deep analysis and automated reports.
  • Designing, planning and analyzing experiments (A/B and multivariate tests).
  • Supporting product and business managers with KPI design and goal setting.
  • Mentoring other data scientists in their growth journeys.
  • Contributing to improving our ways of work, our tooling, and our internal training programs.

What you need to be successful

What Did We Order?
Technical Experience

  • Excellent SQL.
  • Competence with reproducible data analysis using Python or R.
  • Familiarity with data modeling and dimensional design.
  • Strong command over the entire data analysis lifecycle including; problem formulation, data auditing, rigorous analysis, interpretation, recommendations, and presentation.
  • Familiarity with different types of analysis including; descriptive, exploratory, inferential, causal, and predictive analysis.
  • Deep understanding of the various experiment design and analysis workflows and the corresponding statistical techniques.
  • Familiarity with product data (impressions, events, .) and product health measurement (conversion, engagement, retention, .).
  • Familiarity with BigQuery and the Google Cloud Platform is a plus.
  • Data engineering and data pipeline development experience (e.g. via Airflow) is a plus.
  • Experience with classical ML frameworks (e.g. Scikit-learn, XGBoost, LightGBM, .) is a plus.

Qualifications

Bachelor's degree in engineering, computer science, technology, or similar fields. A postgraduate degree is a plus but not required.

  • 3+ years of overall experience working in data science and machine learning.
  • Experience doing data science in an online consumer product setting is a plus.
  • A good problem solver with a ‘figure it out’ growth mindset.
  • An excellent collaborator.
  • An excellent communicator.
  • A strong sense of ownership and accountability.
  • A ‘keep it simple’ approach to #makeithappen.

Who we are

Since launching in Kuwait in 2004, talabat, the leading on-demand food and Q-commerce app for everyday deliveries, has been offering convenience and reliability to its customers. talabat’s local roots run deep, offering a real understanding of the needs of the communities we serve in eight countries across the region.
We harness innovative technology and knowledge to simplify everyday life for our customers, optimize operations for our restaurants and local shops, and provide our riders with reliable earning opportunities daily.
At talabat, we foster an innovative environment where our talabaty employees can strive to create a positive impact across the region through the use of our platform.

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Course: Data Management, Manipulation and Analysis using Excel

Dubai, Dubai Europeanqualitytc

Posted today

Job Viewed

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Job Description

Data Management, Manipulation and Analysis using Excel

ID 473

Course: Data Management, Manipulation and Analysis using Excel

This course is aimed at professionals who have, or will soon have, responsibility for managing and manipulating data using MS Excel on a day-to-day basis. The course assumes zero knowledge, begins with an introduction to the Excel environment, and ends with delegates being skilled in using 50+ MS Excel functions, sophisticated data management, and charting techniques, and advanced data analysis capability.

This course will feature:

  • Advanced data analysis
  • Both textual and numerical data
  • Forecasting
  • Advanced charting
What are the Goals?

By the end of this course, participants will be able to:

  • Analyse relationships across information and data using MS Excel.
  • Generate data forecasts using MS Excel.
  • Organise your company’s data in a more structured manner.
  • Analyse your data effectively using various MS Excel techniques.
  • Select the appropriate chart for your data.
Who is this Course for?

This course is suitable for a wide range of professionals but will greatly benefit:

  • Administrators using MS Excel at a very basic level
  • Administrators with a need to improve data management techniques utilising MS Excel
  • New Administrative Staff with no prior knowledge of MS Excel
  • HR professionals seeking to use MS Excel to analyse employee data and inventory data
  • Oil and Gas, telecommunications, and electricity industry employees looking to improve their data management and data representation skills
How will this be Presented?

This course will utilise a variety of proven adult learning techniques to ensure maximum understanding, comprehension, and retention of the information presented. The course will be split up into themes with a series of exercises based on each theme. The approach will also be incremental with each session building on prior knowledge. Each delegate will be introduced to practical, hands-on learning using MS Excel.

Delegates can bring their own Windows or Mac OS laptop to the sessions, for them to be comfortable with the environment and version of MS Excel that they will be working on.

The Course Content

Day One: An Introduction to the MS Excel Environment

  • Cell referencing, cell formatting, and entering formula
  • Copy and pasting
  • Introductory charts

Day Two: Using MS Excel Functions for Fundamental Data Analysis

  • Use of text function, FIND(), LEN(), LEFT(), RIGHT() and &
  • Use of count functions, COUNTA(), COUNTIF(), COUNTIFS() and SUMIF()
  • Basic statistical functions, Max and Average
  • Filtering, sorting, and use of conditional formatting

Day Three: Intermediate MS Excel Functions

  • Use of VLOOKUP() and HLOOKUP()
  • Date functions, YEAR(), MONTH(), DAY(), YEARFRAC()
  • Selecting appropriate charts
  • Introduction to Pivot tables

Day Four: Carrying out Statistical Analysis using MS Excel

  • Using MS Excel to calculate mean, mode, and median
  • The difference between the various standard deviation and variance function in MS Excel
  • Using MS Excel to examine inter-dependency
  • Drawing histograms in MS Excel
  • Introduction to Data Analysis functions

Day Five: What if and Scenario Analysis Using MS Excel

  • Naming cells in MS Excel
  • Linking cells together to undertake scenario analysis
  • Introduction to solver
  • Advanced charting
  • Sharing MS Excel output with other office formats

European Quality Training and Management Consultancy

At European Quality Training and Management Consultancy, we provide high-quality training and consultancy services to develop future leaders. With a team of skilled experts, we tailor programs to meet the needs of public and private sectors, grounded in quality, ethics, and social responsibility. Our client-focused approach ensures professionalism and sustainable outcomes.

Subscribe now to our mailing list and keep up to date with our offers and news.

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