[Career Week 2025] VinMotion | Robot Learning Engineer

Hanoi

Full-time

28/03 — 30/04/2025

Job Description

About Us: VinMotion is at the forefront of robotics innovation, developing advanced humanoid robots for various applications. We are looking for a skilled Robot Learning Engineer to lead the development, training, and deployment of reinforcement learning (RL) algorithms for humanoid robots.

Key Responsibilities:

  • Develop, train, and deploy reinforcement learning algorithms for robotic motion and manipulation tasks.
  • Build and optimize simulation infrastructure to support large-scale policy training for general-purpose robots.
  • Collaborate with the controls team to integrate learned policies into the robot’s existing control stack.
  • Define performance metrics, test learned policies, and evaluate their effectiveness in real-world scenarios.

Requirements:

  • Bachelor’s or Master’s, PhD’s degree in computer science, AI, Mechatronics, Control Engineering – Automation, or a related field
  • Proficiency in writing production-quality code using PyTorch/Tensorflow/JAX.
  • Familiarity with online and offline RL algorithms, such as PPO and SAC.
  • Familiarity with simulation technologies (e.g., IsaacGym,  IsaacLab, Mujoco)
  • Experience in tuning hyperparameters, reward engineering, and optimizing RL training processes.
  • Knowledge of RL techniques, including domain randomization, curriculum learning, and reward shaping.
  • Familiarity with machine learning evaluation tools like TensorBoard or Weights & Biases.
  • Understanding of the latestest development and framework in RL for locomotion, manipulation and navigation

Preferred Qualifications:

  • Experience in transferring policies learned in simulation to real robot hardware.
  • Hands-on experience with massive parallelization training frameworks such as IsaacGym/ IsaacLab
  • Hands-on experience in training locomotion/manipulation/navigation policies for quadrupedal or bipedal robots. Proven experiences with RL applications in industry or real-world problems.

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