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Nvidia Deep Learning Senior Engineer End-To-End Autonomous Driving 
China, Beijing, Beijing 
161126852

Yesterday
China, Beijing
China, Shanghai
time type
Full time
posted on
Posted 3 Days Ago
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What You’ll Be Doing:

  • Design and train innovative large-scale models—including generative, imitation, and reinforcement learning—to enhance the planning and reasoning capabilities of our driving systems.

  • Build, pre-train, and fine-tune LLM/VLM/VLA systems for deployment in real-world autonomous driving and robotics applications.

  • Explore novel data generation and collection strategies to improve diversity and quality of training datasets.

  • Collaborate with cross-functional teams to deploy AI models in production environments, ensuring performance, safety, and reliability standards are met.

  • Integrate machine learning models directly with vehicle firmware to deliver production-quality, safety-critical software.

What We Need to See:

  • 5+ years of experience in developing software infrastructure for large scale AI systems.

  • Bachelor's degree or higher in Computer Science or a related technical field (or equivalent experience).

  • Hands-on experience building LLMs, VLMs, or VLAs from scratch or a proven track record as a top-tier coder passionate about autonomous systems.

  • Deep understanding of modern deep learning architectures and optimization techniques.

  • Proven record of deploying production-grade ML models for self-driving, robotics, or related fields at scale.

  • Strong programming skills in Python and proficiency with major deep learning frameworks.

  • Familiarity with C++ for model deployment and integration in safety-critical systems.

Ways to Stand Out from the Crowd:

  • Experience with LLM/VLM/VLA systems deployable to autonomous vehicles or general robotics. Or publications, open-source contributions, or competition wins related to this field.

  • Deep understanding of behavior and motion planning in real-world AV applications.

  • Experience building and training large-scale datasets and models.

  • Proven ability to optimize algorithms for real-time performance in resource-constrained environments.

  • Strong track record of taking projects from concept to production deployment.