Discovered MENA

Head of Data Science (E-commerce), Dubai

Stellenbeschreibung:

Location: Dubai (relocation support can be provided) We’re looking for a

hands-on Data Science leader

with

product/e-commerce experience

and

startup-build exposure —someone who can

set strategy from scratch while remaining an IC , not a pure people leader or program director. This is a perfect role for someone ready to

step up into leadership , hire a small team, and scale a practice to

5–10 people . You will lead the intelligence layer of our marketplace, powering personalization, search/ranking, pricing, demand forecasting, inventory optimization, marketing science, and real-time agentic AI. You’ll partner with Product, Engineering, Marketing, Supply Chain, and Commercial to turn data into measurable business outcomes. What You Will Lead

Own and execute the data science strategy tied to growth KPIs (acquisition, activation, AOV, repeat rate, margin). Build a roadmap balancing fast iteration with long-term foundations (feature store, real-time inference, experimentation). Hire and develop a multi-disciplinary DS/ML/MLOps team. 2. Customer Insights & Personalization

Deliver multi-objective personalization across web/app surfaces. Build recommenders, search relevance, semantic search, and LTR models. Lead dynamic pricing, elasticity models, and competitive price-matching. Optimize promotions, assortment, and attribute coverage. Apply causal inference for pricing/promo impact. 4. Forecasting & Inventory Optimization

Build multi-layer forecasting models for buying and replenishment. Develop availability, stockout, returns/refund, and supply-chain efficiency models. 5. Marketing Science & Experimentation

Own full-funnel attribution, incrementality, and ROAS optimization. Lead always-on experimentation with rigorous guardrails. Deliver LTV, CAC, churn, and audience segmentation models. 6. Agentic AI & Automation

Build real-time agentic systems for merchandising, pricing, and operations. Implement human-in-the-loop workflows and feedback loops for continuous learning. 7. Catalog Quality & Trust

Apply CV/NLP for enrichment, duplication, attribute extraction, and size mapping. Build fraud/abuse detection with explainability and review layers. 8. Data Platform, MLOps & Governance

Collaborate with Engineering to scale the lakehouse, feature store, and streaming ecosystem. Implement mature MLOps (CI/CD, registries, canary/shadow deployments, monitoring). Champion governance, privacy, and model risk practices. Qualifications

Master’s or PhD in a quantitative field. 12–15+ years applied DS experience (marketplace/e-com preferred). Demonstrated success shipping production ML that moved KPIs at scale. Technical Skills

Strong Python/R/SQL and deep expertise in ML, DL, NLP, forecasting. Experience with TensorFlow/PyTorch, Spark/Hadoop, and cloud platforms (AWS/GCP/Azure). Solid grounding in experimentation, causal inference, and statistical modeling. If you fit the brief of the role and have built a product or ecommerce business's data science platform from the ground up, then APPLY NOW!

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Stelleninformationen

  • Veröffentlichungsdatum:

    02 Mär 2026
  • Standort:

    Berlin
  • Typ:

    Vollzeit
  • Arbeitsmodell:

    Vor Ort
  • Kategorie:

    Development & IT
  • Erfahrung:

    2+ years
  • Arbeitsverhältnis:

    Angestellt

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