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Dexmate
Verified live 9h ago

Reinforcement learning engineer

Brief overview

Santa Clara OfficeIn-person
1 H-1B approvalsDept. of Labor
Reinforcement LearningPPOSACTD3DDPGRoboticsPythonPyTorchTensorFlowJAXRobot KinematicsRobot DynamicsControl SystemsGPU-based SimulationIsaac GymIsaac LabSAPIEN

About the company

Dexmate is a robotics startup developing general-purpose mobile robots with manipulation capabilities.

Visa sponsorship history

1 year sponsoring, last filed FY2026

Data powered by U.S. Department of Labor. This does not guarantee sponsorship for this specific role.
1H-1B approved
100%approval rate
1new H-1B hires
$149,365median wage / yr
H-1B Petition ApprovalsVisas USCIS actually granted: the strongest sign the company sponsors.
20261
LCA Certified ApplicationsAn early filing step, not a visa approval: it signals intent, not confirmed sponsorship.
20261
Top sponsored roles
Software Engineer

Job description

Role Overview

We're seeking Reinforcement Learning experts to develop and deploy cutting-edge RL algorithms that enhance our robots' capabilities.

Responsibilities

  • Design and implement reinforcement learning algorithms for various robotics tasks

  • Develop and optimize RL training pipelines in both simulation and real-world environments

  • Collaborate with robotics engineers to integrate RL models into production systems

  • Conduct experiments to evaluate and improve algorithm performance

  • Scale training infrastructure for efficient learning across multiple robots

Required Qualifications

  • Strong experience with reinforcement learning (PPO, SAC, TD3, DDPG, etc.)

  • Hands-on experience with robotics systems (simulation or real robots)

  • Proven track record applying RL to manipulation, locomotion, or navigation tasks

  • Proficiency in Python and deep learning frameworks (PyTorch, TensorFlow, JAX)

  • Strong understanding of robot kinematics, dynamics, and control

  • Experience with GPU-based simulation such as Isaac Gym, Isaac Lab, SAPIEN, etc.

Preferred Qualifications

  • Experience with distributed RL training systems

  • Experience with sim-to-real transfer techniques

  • Publications in robotics or RL conferences (CoRL, ICRA, RSS, NeurIPS, ICLR, ICML, etc.)

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