Amazon.com Services LLC
Data Science, Science, operations
DataScientist,DemandForecasting
Neural analysis suggests this role is
optimal for Mid+ candidates.
“Data Scientist, Demand Forecasting at Amazon.com Services LLC. Skills: Demand Forecasting, Time series, Foundation models, Machine learning. Design experiments. Run experiments”
What You'll Achieve.
Influence hundreds of millions in decisions; Influence labor plans; Influence financial outlook; Advance state of the art
Industry & Context.
Scientific thinking
What They're Looking For.
Must Have
3+ years ML experience, 3+ years statistical modeling experience, 3+ years data mining experience, 3+ years analytics techniques experience, 3+ years data querying languages experience, 3+ years scripting languages experience, 3+ years statistical/mathematical software experience, 3+ years data scientist experience, Bachelor's degree
Nice to Have
Master's degree, PhD, 2+ years deep learning experience, 2+ years computer vision experience, 2+ years human robotic interaction experience, 2+ years algorithms implementation experience, Experience processing large data, Experience filtering large data, Experience presenting large data, Experience with forecasting, Experience with statistical analysis
What You'll Do.
Evaluate model performance
Improve model performance
Lead forecasting model lifecycle
Research forecasting models
Experiment forecasting models
Launch forecasting models
Define success metrics
Obtain stakeholder sign-off
Measure forecast impact
Develop deep learning models
Deploy deep learning models
Develop statistical models
Deploy statistical models
Perform data analysis
Identify opportunities
Inform model development
Translate research findings
Provide recommendations
Contribute to scientific community
Advance research field
Review experiment results
Analyze foundation model variants
Improve generalization
Shift forecast quality
Design model iterations
Review stakeholder metrics
Explain forecast accuracy
Explain downstream impact
Define success criteria
Validate real-world impact
Build case for sign-off
Collaborate with scientists
Collaborate with engineers
Collaborate with business teams
Contribute to research
How You'll Work.
Team & Collaboration
Cross-functional collaboration; Business partners; Engineering partners; Technical stakeholders; Business stakeholders; Scientists; Engineers; Business teams
Communication Scope
Translate research findings; Clear insights; Clear recommendations; Technical stakeholders; Non-technical stakeholders
Full Job Description
What does it take to build a foundation model that can forecast demand for hundreds of millions of products — including ones that have never been sold before? At Amazon, our Demand Forecasting team is tackling one of the most ambitious challenges in applied time series research: building large-scale foundation models that generalize across an enormous and diverse catalog of products, geographies, and business contexts. This is not incremental modeling work. We are redefining what's possible in demand forecasting. Our team operates at a scale that is unmatched in industry. We run experiments across millions of products simultaneously, pushing the boundaries of what foundation models can learn from vast, heterogeneous time series data. We are also exploring novel data generation techniques that augment our already unprecedented dataset — opening new frontiers in model generalization and forecasting for products with limited or no sales history. The models you build here will ship to production and directly influence hundreds of millions of dollars in automated inventory decisions every week, labor plans for tens of thousands of employees, and Amazon's financial outlook. Beyond operational impact, this team contributes to the broader scientific community and advances the state of the art in time series foundation models. If you are a scientist who wants to work at the frontier of time series research, at a scale no academic lab or startup can match, and see your work deployed to real-world impact — this is the team for you. Key job responsibilities - Design and run rigorous experiments at scale to evaluate and improve foundation model performance across hundreds of millions of products, geographies, and business verticals - Lead the end-to-end lifecycle of forecasting models — from research and experimentation through production launch — including defining success metrics, obtaining stakeholder sign-off, and managing rollout - Conduct online and offline labs to measure
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