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AW Rostamani Group

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Data Science & Risk Analyst

Discussion

Strategy & Forecasting

  • Support execution of the RV methodology and governance framework across all business units.
  • Prepare RV assumptions and depreciation curves for leasing, subscription, buy-back agreements, manufacturer programs and fleet operations.
  • Forecast used vehicle price index & depreciation using internal and external data sources, AI-driven models and UAE market intelligence.
  • Analyze RV exposure by brand, model, fuel type (ICE / Hybrid / EV) and fleet segment.
  • Prepare RV scenario analysis (base, optimistic, downside) leveraging simulation and AI-based scenario tools.

Data Science, AI & Advanced Analytics & Reporting

  • Support the development, calibration and maintenance of predictive, prescriptive and generative AI models for RV forecasting, depreciation curves, portfolio risk analytics and predictive maintenance.
  • Apply machine learning techniques (regression, gradient boosting, time series, clustering) to improve RV forecasting accuracy.
  • Leverage generative AI and LLM-based tools (e.g., Microsoft Copilot, Claude) to accelerate data exploration, model improvements, documentation, report drafting and market intelligence synthesis.
  • Contribute to data pipelines, feature engineering, data validation, model back-testing and MLOps workflows under the guidance of the Data Science team.
  • Support model explainability (e.g. feature importance, SHAP, counterfactual analysis, Bayesian Inference, etc.) and robustness testing to meet governance requirements.
  • Build and maintain automated dashboards for RV tracking, depreciation curve analysis and fleet health reporting using modern BI tools (Power BI, Tableau).
  • Prepare monthly RV risk packs covering exposure, trends, variances and mitigation actions.
  • Ensure data integrity across fleet management systems, valuation tools and remarketing platforms.

Fleet Risk Management

  • Monitor total fleet exposure (leasing, rental, subscription) against approved risk thresholds using automated alerts and AI-based anomaly detection.
  • Identify high-risk models, over-aged stock, low-demand trims and vulnerable powertrains through data-driven segmentation.
  • Support the design of risk-reduction actions such as early disposal, remarketing strategy changes, re-allocation across business units and pricing adjustments.
  • Assist in stress testing the impact of economic factors including interest rates, inflation, regulatory changes, import duties and currency movements using scenario simulation tools.

Market & Competitor Analysis

  • Track UAE used-car market trends, auction performance and brand competitiveness, API-based data feeds and AI-driven market intelligence tools.
  • Benchmark internal RV performance against competitors, leasing companies, OEM forecasts and market indices.
  • Monitor the impact of EV adoption, ADAS technologies, warranty changes and lifecycle cost trends.

Cross-Brand & OEM Engagement

  • Support engagement with OEMs across all automotive brands on RV data, buy-back agreements, warranties and lifecycle assumptions.
  • Assist in evaluating OEM incentive programs and their effect on RV stability using data-driven impact analysis.
  • Prepare analytical support for negotiations on guaranteed buybacks, fleet deals or high-volume orders.

Pricing & Product Support

  • Provide RV input into leasing, rental and subscription pricing tools and validate margin implications.
  • Support commercial teams in defining optimal contract lengths, mileage bands and service packages, leveraging AI-driven pricing optimization techniques.
  • Contribute to lifecycle cost modelling for new mobility products and business cases.

Used-Car Operations & Disposal Strategy

  • Partner with used-car operations to analyze remarketing performance and minimize RV losses.
  • Support recommendations on disposal channels (retail, wholesale, auction, export) using data-driven channel-mix optimization.
  • Monitor time-to-market, margin performance and stock ageing.
  • Track and forecast write-downs on used-car inventory using AI-supported provisioning models.

Governance, Compliance & Policies

  • Support adherence to the RV risk governance framework, model governance standards, policies and control procedures.
  • Assist in preparing documentation for internal audit, external audit and financial reporting requirements (impairment, provisioning).
  • Support model governance procedures for RV and AI/ML models, including version control, validation, monitoring and ethical AI considerations.

Key Performance Indicators (KPIs)

  • RV forecast accuracy vs. actual disposal outcomes

  • Fleet depreciation variance monitoring

  • Used-car margin performance

  • Reduction in high-risk stock and ageing exposure

  • Data quality, dashboard reliability and reporting timeliness

  • Model performance metrics (accuracy, drift, back-test results)

  • Contribution to pricing decisions and remarketing outcomes

  • Effectiveness in leveraging AI tools to drive automation and productivity gains

Educational Qualification

  • Bachelor's degree in Statistics, Mathematics, Economics, Data Science, Computer Science or a related quantitative field.

  • Progress towards CFA, FRM or equivalent qualification is an advantage.

  • Certifications in data analytics, machine learning, AI, cloud platforms (Azure, AWS, GCP) or RV-specific programs are a strong plus.

Work Experience

  • 3-5 years of experience in data science, predictive modeling or financial risk analytics.

  • Exposure to residual value forecasting, portfolio risk monitoring, machine learning or asset valuation strongly preferred.

  • Hands-on experience deploying AI/ML models or automation workflows in a business setting is a plus.

  • Understanding of the UAE automotive market and regional used-car dynamics, with prior experience in multi-brand automotive groups, leasing companies, banks or captive finance preferred.

Systems, Tools & Technical Skills

  • Strong quantitative and analytical skills, including statistical analysis predictive modelling and financial modelling.

  • Proficiency in Python and SQL programming language is a must.

  • Familiarity with AI/ML frameworks (scikit-learn, TensorFlow, PyTorch) and cloud-based analytics platforms (GCP, Azure, AWS, Databricks) is highly desirable.

  • Understanding MLOps concepts, version control (Git), model monitoring, back-testing, and reproducibility is a plus.

  • Working knowledge of generative AI platforms and modern AI workflows, including Microsoft Copilot, OpenAI and Claude, with practical exposure to RAG, prompt engineering, agentic AI use cases, AI-assisted research, documentation automation and rapid prototyping.

  • Familiarity with BI and data-visualization tools such as Power BI, Tableau, and modern data-preparation platforms (Alteryx, Power Query, notebooks).

  • Solid understanding of automotive lifecycle economics, depreciation dynamics and used-car market behavior.

  • Strong attention to detail, data integrity mindset and structured problem-solving skills.

  • Effective written and verbal communication skills, with the ability to translate analysis into actionable insight for both technical and business audiences.

Competencies

  • Analytical thinker with a risk-oriented mindset.

  • Strong attention to detail and data integrity focus.

  • Data-driven, AI-curious and tech-savvy, actively seeks to leverage new tools and technologies.

  • Collaborative across commercial, finance, operations and IT.

  • Ownership, accountability and delivery focus.

  • Continuous learning mindset in a rapidly evolving AI and analytics landscape.

Languages

  • Good written and verbal communication skills in English.

Skills

See also

Data Science jobs by country — openings, pay and top skills →

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