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Core Competencies
Role fitCore Competencies
Use this summary to align your resume positioning with the role.
Demonstrates expertise in leading ML product development, managing cross-functional teams, and optimizing data pipelines for e-commerce applications. Proficient in ML evaluation and backend systems, with a strong focus on delivering business outcomes through effective team leadership and process improvement.
Highest-signal resume keywords
ML Product DevelopmentData Pipeline ManagementEngineering ManagementML Evaluation TechniquesBackend Systems Proficiency
ATS Keywords
Tailor your resumeApplicant Tracking System Keywords
Tip: use these terms in your resume and cover letter to boost ATS matches.
Hard Skills
Machine Learning SystemsNatural Language ProcessingLarge Language ModelsData PipelinesGo ProgrammingPython ProgrammingA/B TestingModel EvaluationPrompt DesignPipeline Design
Soft Skills
Strong Communication SkillsProactive MindsetTeam LeadershipResults-Oriented CultureCollaboration
Tools & Technologies
PIM SystemsAPI-Based ModelsSelf-Hosted ModelsObservability ToolsData Residency Compliance
Industry Keywords
E-CommerceMarketplaceFintechContent ModerationArabic-Language Content
Tech Stack
Tools & technologiesDistributed SystemsPythonGo
About the role
Key responsibilities & impact- Own the end-to-end product data pipeline, including ingestion from feeds and plugins, ML enrichment, moderation and publication
- Lead the ML roadmap for catalogue intelligence, including category trees, attribute coverage, translation quality, ML-assisted moderation, item embeddings and recommendations
- Lead large cross-team projects and drive them to production
- Contribute to quarterly planning and roadmap definition; define and report OKRs for catalogue quality and personalisation
- Review feature designs and ensure non-functional requirements for ML evaluation, inference cost, latency and data residency
- Build and maintain evaluation and labeling infrastructure for measuring model changes before production
- Oversee technical debt management and incident handling across ML and backend services
- Hire, evaluate and motivate team members; develop ML engineers into owners of business outcomes
- Collaborate with Shopping, Offers, Monetisation, catalogue operations and partner support
- Foster a results- and business-oriented culture
- Monitor key team performance indicators
- Ensure process and delivery transparency for stakeholders and partner functions
- Optimise processes to improve productivity
- Lead a cross-functional team of ML engineers, backend and frontend engineers, QA and a product analyst
- Work with Shopping, Offers and Monetisation teams, catalogue operations and partner support
Requirements
What you’ll need- 6+ years of engineering experience, including 3+ years building production ML systems (NLP, LLM applications, embeddings, or classification at scale)
- 2+ years as an Engineering Manager or ML Team Lead at a fast-growing e-commerce, marketplace or fintech company
- Hands-on experience shipping LLM-based products: prompt and pipeline design, fine-tuning, evaluation, cost and latency control, self-hosted and API-based models
- Experience building and operating large-scale data and ML pipelines (batch and streaming), and making them observable, reproducible and reliable
- Solid backend fundamentals; comfortable reviewing Go and Python services and reasoning about distributed systems
- Strong grasp of ML evaluation: golden datasets, labeling workflows, offline metrics, and A/B testing tied to business outcomes
- Product sense connecting catalogue quality to conversion, discovery and merchant growth
- Proactive mindset and ability to work independently
- Strong communication skills in English (B2 level or higher)
- Nice to have: experience with product catalogues, PIM systems, or marketplace content moderation
- Nice to have: experience with Arabic-language content
- Nice to have: familiarity with data residency and regulated-data requirements
Benefits
Comp & perks- Full-time B2B contract
- Fully remote setup
- Up to 20% tax allowance
- 22 paid leave days annually
- Stock options (ESOP) in a fast-scaling, pre-IPO company
- Flexi benefits you can use for wellness, travel, or learning
- Work alongside a high-performing, international engineering team in a global fintech unicorn
