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Senior Applied Scientist, Industrial Robotics Group

Job in Seattle, King County, Washington, 98127, USA
Listing for: Amazon
Full Time position
Listed on 2026-05-30
Job specializations:
  • Engineering
    AI Engineer (Applied/Software), Robotics
Salary/Wage Range or Industry Benchmark: 167100 - 226100 USD Yearly USD 167100.00 226100.00 YEAR
Job Description & How to Apply Below

Job :  |  Services LLC

Amazon Industrial Robotics is seeking exceptional applied science talent to develop AI and machine learning systems that will enable the next generation of advanced manufacturing capabilities at unprecedented scale. Amazon is building revolutionary software infrastructure that combines cutting‑edge AI, large‑scale optimization, and advanced manufacturing processes to create adaptive production control systems.

As a Senior Applied Scientist, you will develop and improve machine learning systems that enable real‑time manufacturing flow decisions. You will leverage state‑of‑the‑art optimization and ML techniques, evaluate them against representative manufacturing scenarios, and adapt them to meet the robustness, reliability, and performance needs of production environments. You will invent new algorithms where gaps exist and collaborate closely with software engineering, manufacturing engineering, robotics simulation, and operations teams.

Your outputs will directly power the systems that determine what to build next, where to allocate resources, and how to maximize throughput.

Key Responsibilities
  • Identify and devise new scientific approaches for constraint identification, dispatch optimization, WIP release control, and predictive flow intelligence when the problem is ill‑defined and new methodologies need to be invented.
  • Lead the design, implementation, and successful delivery of scientifically complex solutions for real‑time manufacturing flow optimization in production.
  • Design and build ML models and optimization algorithms including constraint prediction, starvation risk forecasting, and dispatch optimization.
  • Write a significant portion of critical‑path scientific code with solutions that are inventive, maintainable, scalable, and extensible.
  • Execute rapid, rigorous experimentation with reproducible results, closing the gap between simulation and real manufacturing environments.
  • Build evaluation benchmarks that measure model performance against manufacturing outcomes including constraint utilization and throughput rather than traditional ML metrics alone.
  • Influence your team’s science and business strategy through insightful contributions to roadmaps, goals, and priorities.
  • Partner with manufacturing engineering, robotics simulation, and applied intelligence teams to ensure scientific approaches are grounded in operational reality.
  • Drive your team’s scientific agenda, role model publishing of research results at peer‑reviewed venues when appropriate and not precluded by business considerations.
  • Actively participate in hiring and mentor other scientists, improving their skills and ability to deliver.
  • Write clear narratives and documentation describing scientific solutions and design choices.
Basic Qualifications
  • Knowledge of programming languages such as C/C++, Python, Java, or Perl.
  • PhD in computer science, operations research, machine learning, industrial engineering, or a related quantitative field, or Master’s degree plus 4+ years building ML models and algorithms in applied settings.
  • 5+ years of experience applying machine learning, optimization, or decision systems to complex real‑world problems.
  • Proven track record of delivering scientifically complex solutions into production.
  • Deep expertise in one or more of: combinatorial optimization, reinforcement learning, constraint programming, or stochastic modeling.
  • Ability to design rigorous experiments, analyze results, and iterate quickly with reproducible baselines.
  • Demonstrated technical contributions through publications, patents, or impactful production systems.
Preferred Qualifications
  • 8+ years of experience in applied science or research with progressive scope and impact.
  • Experience with manufacturing systems, production scheduling, supply chain optimization, or industrial process control.
  • Experience with Theory of Constraints or flow‑based production optimization.
  • Experience with real‑time decision systems that operate under uncertainty.
  • Experience with sim‑to‑real transfer or physics‑informed machine learning.
  • Experience with AWS services including Sage Maker, and familiarity with MLOps practices.
  • Experience with AI‑native…
Position Requirements
10+ Years work experience
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