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Embodied VLA Algorithm Engineer

Responsibilities

  • Proficient in Transformer architecture, with training and tuning capabilities for VLA/VLM/LLM and other models, and familiar with the principles and applications of mainstream models such as RT-2, OpenVLA, PI, OpenEMMA, and EMMA
  • Master multimodal alignment technology to realize the end-to-end generation of vision and language input to the robot's action sequence (such as task planning and action control)
  • Proficient in using PyTorch, DeepSpeed and other frameworks, and has experience in distributed training of large models with multiple machines and multiple cards
  • Optimize the inference efficiency of models on embedded platforms (e.g., lightweight deployment, CUDA acceleration) to support real-time control of real robots or autonomous driving systems
  • Combined with imitation learning (IL) and reinforcement learning (RL), the generalization of the model in physical scenarios is enhanced


Requirements

  • Master's degree or above, major in computer science, artificial intelligence, robotics related majors
  • Has experience in the industrial robot, humanoid robot/autonomous driving industry
  • Master cutting-edge emerging technologies