Amazon.com Services LLC
Data Science, Applied Science, worldwide grocery stores
Sr.AppliedScientist,WWGSRealEstate&StoreDevelopment
Neural analysis suggests this role is
optimal for Senior candidates.
“Sr. Applied Scientist, WWGS Real Estate & Store Development at Amazon.com Services LLC. Skills: Machine learning, Forecasting, Optimization, GenAI. Design forecasting models. Implement machine learning solutions”
Industry & Context.
Tackle complex business problems
What They're Looking For.
Must Have
Master's degree and 10+ years experience, 5+ years building ML models, Programming in Java, C++, Python, Experience building ML models for business
Nice to Have
PhD in quantitative field, Experience with R, scikit-learn, Spark MLLib, Experience with MxNet, Tensorflow, numpy, scipy, Experience with Hadoop, Spark, Research in corporate setting
What You'll Do.
Design forecasting models
Implement machine learning solutions
Predict store performance
Optimize retail network
Analyze large datasets
Uncover insights and patterns
Develop end-to-end solutions
Develop tools and frameworks
Scale ML model development
Leverage GenAI models
Enhance user interaction
Improve user experience
Present research findings
Present recommendations
Collaborate with cross-functional teams
Drive adoption of models
Drive adoption of insights
Mentor junior scientists
Provide technical guidance
Support professional growth
Stay current on developments
Propose innovative approaches
How You'll Work.
Team & Collaboration
Cross-functional teams; Scientists; Economists; Business partners; Executive Leadership
Communication Scope
Present research findings; Present recommendations
Full Job Description
Do you want to help shape the future of Amazon's physical retail presence? Worldwide Grocery Stores (WWGS), Location Strategy and Analytics team is looking for a Sr. Applied Scientist to join us in developing advanced forecasting models, optimization models, and analytical tools to support critical real estate and network planning decisions for Amazon's Worldwide Grocery business, including Whole Foods Market. Our team is responsible for developing predictive models and tools to support Real Estate and Topology analysts in making important decisions regarding our stores—including new store openings, relocations, closures, remodels, design, new formats, and more. We leverage statistical modeling, machine learning, and GenAI to build solutions for store sales forecasting, sales transfer effects, macrospace optimization, store network optimization, store network diffusion planning, and causal effects. As a Sr. Applied Scientist on our team, you will apply your deep technical expertise to tackle complex business problems and develop innovative solutions to improve our forecasting, decision-making capabilities, and MLOps. You will collaborate with a diverse team of scientists, economists, and business partners to identify opportunities, develop hypotheses, build internal products, and translate analytical insights into actionable recommendations for Executive Leadership. Key job responsibilities - Design and implement forecasting models and machine learning solutions to predict store performance and optimize our retail network. - Analyze large datasets to uncover insights and patterns related to store performance, customer behavior, and market dynamics. - Develop and own end-to-end solutions, tools and frameworks to scale our ML model development, MLOps, and data analysis. - Leverage GenAI models to enhance user interaction with our solutions, improve overall user experience, and build new features. - Present research findings and recommendations to scientists, business
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