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Staff AI Research Engineer, Perception

Confirmed live in the last 24 hours

RoboForce

RoboForce

Milpitas, CA
On-site
Posted April 13, 2026

Job Description

Why RoboForce

RoboForce is an AI robotics company developing Physical AI–powered Robo-Labor for dull, dirty, and dangerous work. The company's robots are engineered for demanding industrial environments, with a focus on real-world deployment and scalability.
 
We are seeking a Staff AI Research Engineer, Perception to lead robot perception capabilities from research to real-world deployment. In this role, you will develop and ship production-grade perception models — spanning object detection, pose estimation, depth estimation, and scene understanding — directly onto RoboForce robotic platforms operating in demanding industrial environments.
 
Responsibilities
  • Develop and own state-of-the-art perception models for object detection, 6-DoF pose estimation, depth estimation, multi-object tracking, and multi-sensor fusion from research through to on-robot deployment.
  • Build and optimize full perception stacks end-to-end — from data preparation and model training to quantization, TensorRT conversion, and inference optimization on robot compute hardware.
  • Implement multi-task learning pipelines and distributed training workflows to maximize model efficiency and generalization across diverse industrial scenarios.
  • Profile and optimize deployed perception models for latency, throughput, and memory constraints on embedded robot hardware.
  • Collaborate with manipulation and foundation model teams to integrate perception outputs — object poses, depth maps, scene graphs — into downstream robot control policies.
Requirements
  • Master's degree in Machine Learning, AI, Robotics, or a related field with 4+ years of industry experience, or a PhD degree.
  • Expertise in modern computer vision architectures and perception techniques including detection, segmentation, pose estimation, and depth estimation.
  • Proven experience deploying perception models to production systems — including model optimization, quantization, and inference runtime engineering (e.g., TensorRT, ONNX Runtime).
  • Experience with deep learning frameworks such as PyTorch, JAX, or TensorFlow, and strong proficiency in Python and C++.
  • Strong understanding of linear algebra, projective geometry, probabilistic theory, and numerical optimization, with practical experience implementing these in real systems.
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