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Senior Applied Scientist

Posted 1 day ago

Job Description

Amazon is seeking a world-class Sr. Applied Scientist to lead the development of next-generation object tracking systems for autonomous robots operating at Amazon's scale. In this role, you will architect robust, real-time tracking pipelines that fuse information across multiple sensor modalities — combining the rigor of classical estimation theory with the power of modern learning-based approaches to deliver tracking systems that are accurate, reliable, and scalable in complex, dynamic environments.

Amazon is on a mission to redefine the future of automation — and we're looking for exceptional talent to help lead the way. We are building the next generation of advanced robotic systems that seamlessly blend cutting-edge AI, sophisticated control systems, and novel mechanical design to create adaptable, intelligent automation solutions capable of operating safely alongside humans in dynamic, real-world environments.

We leverage the power of machine learning, artificial intelligence, and advanced robotics to solve some of the most complex operational challenges at a scale unlike anywhere else in the world. Our fleet of robots spans hundreds of facilities globally, working in sophisticated coordination to deliver on our promise of customer excellence — and we're just getting started.

As a Sr. Applied Scientist working on Tracking and Sensor Fusion, you will own the design and delivery of tracking systems that enable robots to maintain persistent, accurate awareness of objects, humans, and dynamic elements in their environment. You will bring deep expertise in multi-sensor fusion, Bayesian estimation, and Kalman filtering — paired with a strong command of modern learning-based tracking methods — to build systems that are both principled and adaptive.

Your work will be foundational to safe and intelligent robot behavior: enabling downstream planning, navigation, and manipulation systems to operate with confidence in the presence of uncertainty and change. You will lead research that bridges classical state estimation with data-driven approaches, collaborating with world-class teams pushing the boundaries of robotic perception, autonomy, and human-robot interaction.

Join us in building intelligent tracking and fusion systems that will define the future of autonomous robotics at scale.

Key job responsibilities
- Lead the research, design, and development of multi-object tracking (MOT) systems for autonomous robots, combining classical and learning-based approaches
- Develop and deploy sensor fusion pipelines that integrate data from cameras, depth sensors, radar, IMUs, and other sensor modalities using principled estimation frameworks (Extended Kalman Filters, Unscented Kalman Filters, Particle Filters, factor graphs)
- Pioneer learning-based tracking methods including neural data association, learned motion models, transformer-based trackers, and end-to-end differentiable tracking architectures
- Design robust track management systems — including track initialization, association, occlusion handling, re-identification, and track lifecycle management
- Develop and validate tracking systems that operate reliably in real-time under challenging conditions: occlusion, clutter, sensor noise, and dynamic scene changes
- Collaborate closely with Perception, Navigation, Planning, and Controls teams to deliver integrated autonomy solutions
- Establish benchmarks, evaluation frameworks, and safety validation protocols for tracking systems
- Mentor scientists and engineers; foster a culture of scientific rigor, innovation, and high-impact delivery
- Publish research findings in top-tier venues (CVPR, ICCV, ECCV, ICRA, NeurIPS, etc.) and contribute to patents

A day in the life

- Train ML models for deployment in simulation and real-world robots, identify and document their limitations post-deployment
- Drive technical discussions within your team and with key stakeholders to develop innovative solutions to address identified limitations
- Actively contribute to brainstorming sessions on adjacent topics, bringing fresh perspectives that help peers grow and succeed — and in doing so, build lasting trust across the team
- Mentor team members while maintaining significant hands-on contribution to technical solutions

About the team
Our team is a diverse group of scientists and engineers passionate about building intelligent machines. We value curiosity, rigor, and a bias for action. We believe in learning from failure and iterating quickly toward solutions that matter.
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About the job
Posted on

May 20, 2026

Apply before

Jun 19, 2026

Job typeFull-time
Location
US, CA