Amazon.com Services LLC

Applied Science, subsidiaries

AppliedScientist-Perception(SLAM/VIO)

$172–223k New York, New York, United States FULL TIME
Market Sentiment
HIGH DEMAND

Neural analysis suggests this role is
optimal for Mid+ candidates.

The Brief

“Applied Scientist - Perception (SLAM/VIO) at Amazon.com Services LLC. Skills: Visual Inertial Odometry, SLAM, Sensor fusion, State estimation. Develop VIO and sensor fusion systems. Design state estimation algorithms”

Industry & Context.

Applied Science, subsidiaries
Problems you'll solve

Root cause analysis; Debugging; Troubleshooting

What They're Looking For.

Must Have

Master's degree and 3+ years experience, Experience with Python, Java, C++, Developing and deploying VIO/SLAM systems, Multi-sensor fusion and state estimation, Optimizing algorithms for embedded hardware, Experience with real sensor data, Familiarity with modern ML approaches

Nice to Have

Experience leading technical initiatives, Publication record at major conferences, Experience with real-time systems programming, Experience with state estimation on legged robots, Experience with stereo vision systems, Track record of shipping VIO/SLAM systems, Experience with NVIDIA Jetson, Qualcomm RB5, Familiarity with ROS/ROS2, Integrating learned perception modules, History of technical leadership

What You'll Do.

Develop VIO and sensor fusion systems

Design state estimation algorithms

Implement state estimation algorithms

Deploy state estimation algorithms

Own algorithm development pipeline

Optimize perception systems for hardware

Leverage ML approaches

Combine learned representations with geometric techniques

Prototype perception systems

Test perception systems

Iterate perception systems

Design Visual Inertial Odometry algorithms

Develop multi-sensor fusion pipelines

Optimize perception tracking algorithms

Apply ML-based perception techniques

Build calibration infrastructure

Build evaluation infrastructure

Build benchmarking infrastructure

Collaborate with hardware teams

Collaborate with controls teams

Collaborate with navigation teams

Integrate perception outputs

How You'll Work.

Team & Collaboration

Hardware teams; Controls teams; Navigation teams

Full Job Description

We are seeking an Applied Scientist to develop and optimize Visual Inertial Odometry (VIO) and sensor fusion systems for our intelligent robots. In this role, you will design, implement, and deploy state estimation and tracking algorithms that enable robots to understand their position and motion in real time, even in challenging and dynamic environments. You will own the full pipeline from algorithm development through embedded deployment, ensuring that perception systems run efficiently on resource-constrained robotic hardware. You will also leverage modern machine learning approaches to push the boundaries of classical perception methods, combining learned representations with geometric techniques to achieve robust, real-time performance. This is a deeply hands-on role. You will work directly with sensors, hardware, and real-world data, while prototyping, testing, and iterating in physical environments. The ideal candidate has strong foundations in VIO and sensor fusion, practical experience optimizing algorithms for embedded platforms, and familiarity with how modern deep learning is transforming perception. Key job responsibilities - Design and implement Visual Inertial Odometry algorithms for robust real-time state estimation on robotic platforms like Sprout - Develop multi-sensor fusion pipelines integrating cameras, IMUs, and other sensing modalities for accurate pose tracking - Optimize perception and tracking algorithms for deployment on embedded hardware (e.g., ARM, GPU-accelerated edge devices) under strict latency and power constraints - Apply modern ML-based perception techniques (learned features, depth estimation, neural odometry) to complement and improve classical geometric approaches - Build and maintain calibration, evaluation, and benchmarking infrastructure for perception systems - Collaborate with hardware, controls, and navigation teams to integrate perception outputs into the robot’s autonomy stack - Lead technical projects from research pro

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