About The Position

As a Senior Machine Learning Engineer, you will join end-to-end development of large language models and agentic systems, from training pipelines to evaluation frameworks and production deployment. You will work at the intersection of modeling, infrastructure, and product, helping push model quality through systematic experimentation and iteration. You’ll collaborate closely with research, infrastructure, and product teams to design robust training pipelines, build agent environments, and ship high-impact AI capabilities into real-world applications. This role blends deep modeling expertise with strong engineering fundamentals and offers the opportunity to shape both the technical direction and the ML platform powering Apple products.

Requirements

  • 5+ years of hands on ML engineering experiences, with at least 1+ years working directly on large language models or generative AI.
  • Bachelor’s, Master’s, or PhD in Computer Science, Machine Learning, or a related technical field — or equivalent practical experience.
  • Hands-on experience with LLM training workflows, including one or more of: Pretraining or continued pretraining, Supervised fine-tuning (SFT), Preference optimization (e.g., RLHF, DPO, PPO).
  • Strong software engineering fundamentals: debugging, testing, code reviews, and production reliability.
  • Demonstrated publication records in relevant conferences (e.g., NeurIPS, ICML, ICLR, etc.).

Nice To Haves

  • Direct experience with agentic systems, including tool use, environment design, or reinforcement learning.
  • Experience with building or operating training environments or simulators (gym-style, tool-based, or sandboxed environments).
  • Experience with model hillclimbing workflows: systematic experimentation, ablations, dataset iteration, and continuous quality improvement.
  • Ability to work across research and engineering boundaries, turning ideas into scalable systems.
  • Have demonstrated creative and critical thinking with an innate drive to improve how things work.
  • Have a high tolerance for ambiguity.
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