San Francisco

Machine Learning Engineer / Researcher

What you will do

  • Train, fine-tune, and evaluate models for on-device and cloud-based ML workloads.
  • Design and implement agent architectures that power Blackstar's intelligent features.
  • Build inference pipelines optimized for latency, memory, and power constraints.
  • Collaborate with software and hardware engineers to co-design systems that run efficiently on Blackstar devices.

What we are looking for

  • Strong understanding of modern ML architectures, including transformers, diffusion models, and RLHF.
  • Proficiency in Python and PyTorch; experience with model optimization tools (ONNX, TensorRT, Core ML, or similar).
  • Ability to read, implement, and adapt ideas from recent research papers.
  • You are based in or willing to relocate to San Francisco.

Nice to have

  • Experience with on-device ML, model compression, or edge inference.
  • Background in building agent systems or multi-step reasoning pipelines.

Compensation

$TBD + equity

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