Sr. Data Scientist , Worldwide Global Selling -AIT
Indexed description
The Worldwide Global Selling Analytics, Intelligence, and Technology (WWGS-AIT) team serves as the research, automation, and insight arm of the International Seller Service data hub, enabling rapid delivery of growth insights through strategic investments in regional data foundations, self-service business intelligence solutions, and artificial intelligence tools.
The WWGS-AIT team is positioned to establish AI-ready foundational capabilities across the WWGS organization while maintaining excellence in business insight generation, and self-service BI/AI application development.
WWGS-AIT is looking for a Senior Data Scientist to build reusable science capabilities that support seller growth, operational decision-making, and cross-domain innovation across Worldwide Global Selling.
You will lead high-impact modeling initiatives at the intersection of graph science, machine learning, simulation, and optimization. Your initial focus will include building identity-resolution and entity-linkage capabilities that create a trusted One ID view across fragmented seller and business data; developing simulation and decision models for logistics and inventory options; and establishing reusable modeling foundations for seller lifecycle and other cross-domain use cases.
You will also partner with business, product, engineering, and analytics teams to evaluate and deliver prioritized science opportunities through a common intake process. This role is ideal for a hands-on scientist who can move from ambiguous business problems to robust, production-ready models and decision systems.
Key job responsibilities
- Lead the design, development, and productionization of graph-based identity-resolution and entity-linkage models that connect seller, account, business, logistics, and other relevant entities into a trusted One ID foundation.
- Develop simulation, optimization, forecasting, and decision-support models for logistics, inventory, and related operational choices; quantify trade-offs, uncertainty, and expected business impact.
- Establish scalable model-development practices, including feature engineering, experiment design, model validation, monitoring, reproducibility, documentation, and responsible-use controls.
- Translate ambiguous business questions into clear science problems, measurable hypotheses, model requirements, and decision frameworks.
- Partner with Data Engineering, BIE, Product, and domain teams to build reliable data pipelines, model features, evaluation datasets, and production model interfaces.
- Support prioritized science needs from Supply Chain, Seller Success, and other teams through the WWGS-AIT operating-planning intake and prioritization process.
- Define model performance, business-impact, and operational-success metrics; use offline evaluation, back-testing, simulation, and controlled experiments to continuously improve solutions.
- Contribute applied AI and GenAI expertise where it improves science-enabled products—for example, model evaluation, retrieval/ranking, intelligent decision support, or AI-agent capabilities grounded in trusted data and models.
- Influence the WWGS science roadmap by identifying opportunities to convert repeated business problems into durable, reusable data and modeling capabilities.
- 5+ years of data querying languages (e.g. SQL), scripting languages (e.g. Python) or statistical/mathematical software (e.g. R, SAS, Matlab, etc.) experience
- 5+ years of data scientist experience
- Experience with statistical models e.g. multinomial logistic regression
- Master's degree in econometrics, statistics, industrial engineering, operations research, optimization, data mining, analytics, or equivalent quantitative field
- Experience in e-commerce
- Hands-on experience developing LLM / GenAI applications (e.g., RAG, prompt engineering, fine-tuning, or agent / tool-use frameworks).
- Experience building conversational or agentic AI systems, including multi-agent orchestration, function-calling, or MCP-based tool integration.
Company - Amazon (Shanghai) International Trading Company Limited
Job ID: A10501867
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