Applied Scientist, One MHS Software, Controls, Science
North Reading, MA - USA
Job Summary
Key job responsibilities
Own the research and development of optimization and sequential decision-making solutions spanning constraint programming stochastic and robust optimization contextual bandits and reinforcement learning for real-time MHE control and scheduling optimization in a production environment.
Formulate fulfillment operations and manufacturing scheduling problems (production scheduling resource allocation sorter optimization throughput and congestion control) as optimization or sequential decision-making problems and design multi-objective functions that balance competing operational objectives such as on-time delivery utilization changeover cost and schedule stability.
Build and leverage high-fidelity simulation and emulation environments for safe offline training policy validation and transfer to live systems before fleet-scale deployment.
Collaborate across multiple science and engineering teams to integrate policies into production planning and real-time control systems including monitoring guardrails and staged rollout.
Communicate results and their limitations clearly in writing to technical and business audiences and contribute to the teams external research presence through publication where the work merits it.
About the team
Amazon is building next generation software hardware and processes that will run our global network of fulfillment centers that move millions of units of inventory and ensure customers get what they want when promised.
The Science Software team in the One MHS organization unlocks Material Handling Equipment (MHE) innovation through a multiplicity of disciplines within Artificial Intelligence (AI) and applied science including Optimization Reinforcement Learning classical Machine Learning statistical modeling Computer Vision (CV) and Physics-Informed Neural Networks (PINNs). The team is dedicated to building self-optimizing fulfillment centers developing the models that drive real-time building-wide orchestration of MHE. We conduct experiments develop models and apply machine learning (ML) at scale to optimize throughput flow merge and congestion control and to improve operational performance across the fulfillment network.
- 2 years of building machine learning models or developing algorithms for business application experience
- PhD in Operations Research Statistics Applied Mathematics Engineering Computer Science or related field
- Experience in optimization mathematics such as linear programming and nonlinear optimization
- Knowledge of and proficiency in the use of Python scripting language
- Experience Experienced with end-to-end ownership of major project deliverables
- Experience with popular deep learning frameworks and RL tooling (e.g. PyTorch d3rlpy Ray/RLlib Gymnasium Stable-Baselines3 Isaac Gym/Omniverse)
- Demonstrated experience developing and applying optimization or reinforcement learning solutions (e.g. MILP constraint programming stochastic programming contextual bandits deep RL) to real-world control scheduling or operation problems
- First-author publications at top-tier machine learning operations research or control venues (e.g. NeurIPS ICML ICLR AAAI AISTATS CPAIOR INFORMS Journal on Computing or IEEE control and automation conferences)
- Experience building a discrete-event simulator to train and evaluate operational policies and calibrating it against historical data
- Experience applying optimization or RL in a setting analogous to ours: production scheduling real-time industrial control robotics material handling industrial process or operations.
- Experience deploying optimization or ML models to production at scale and partnering with engineering teams on inference monitoring and feedback loops
Amazon is an equal opportunity employer and does not discriminate on the basis of protected veteran status disability or other legally protected status.
Our inclusive culture empowers Amazonians to deliver the best results for our customers. If you have a disability and need a workplace accommodation or adjustment during the application and hiring process including support for the interview or onboarding process please visit for more information. If the country/region youre applying in isnt listed please contact your Recruiting Partner.
The base salary range for this position is listed below. Your Amazon package will include sign-on payments and restricted stock units (RSUs). Final compensation will be determined based on factors including experience qualifications and location. Amazon also offers comprehensive benefits including health insurance (medical dental vision prescription Basic Life & AD&D insurance and option for Supplemental life plans EAP Mental Health Support Medical Advice Line Flexible Spending Accounts Adoption and Surrogacy Reimbursement coverage) 401(k) matching paid time off and parental leave. Learn more about our benefits at MA Boston - 142800.00 - 193200.00 USD annually
USA MA North Reading - 142800.00 - 193200.00 USD annually
Required Experience:
IC
About Company
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