Genesis
Genesis

Training

TLDR

Optimize distributed foundation-model training pipelines across multi-node GPU clusters, profiling bottlenecks and improving convergence times.

What You’ll Do

  • Drive down wall-clock time to convergence by profiling and eliminating bottlenecks across the foundation model training stack stack, from data pipelines to GPU kernels

  • Design, build, and optimize distributed training systems (PyTorch) for multi-node GPU clusters, ensuring scalability, robustness, and high utilization

  • Implement efficient low-level code (CUDA, cuDNN, Triton, custom kernels) and integrate it seamlessly into high-level training frameworks

  • Optimize workloads for hardware efficiency: CPU/GPU compute balance, memory management, data throughput, and networking

  • Develop monitoring and debugging tools for large-scale runs, enabling rapid diagnosis of performance regressions and failures

What You’ll Bring

  • Deep experience in distributed systems, ML infrastructure, or high-performance computing (8+ years)

  • Production-grade expertise in Python

  • Low-level performance mastery: CUDA/cuDNN/Triton, CPU–GPU interactions, data movement, and kernel optimization

  • Scaling at the frontier: experience with PyTorch and training jobs using data, context, pipeline, and model parallelism

  • System-level mindset with a track record of tuning hardware–software interactions for maximum utilization

Genesis builds general-purpose robots designed to tackle a wide range of physical labor tasks, empowering people to focus on creativity and exploration. Catering to industries seeking advanced automation solutions, our flagship creation, Eno, is leading the way in real-world applications. With a unique blend of American and French innovation, we harness cutting-edge technology to redefine work and productivity.

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