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On-Device ML Infrastructure Engineer (ML User Experience APIs), Graphics, Games and Machine Learning

Apple — iPhone, Mac & the Apple ecosystem

Cupertino, United States Mid Posted Aug 6, 2026
ML

About the role

Imagine being at the forefront of an evolution where innovative AI meets the elegance of Apple silicon. The On-Device Machine Learning team transforms groundbreaking research into practical applications, enabling billions of Apple devices to run powerful AI models locally, privately, and efficiently. We stand at the unique intersection of research, software engineering, hardware engineering, and product development, making Apple a top destination for machine learning innovation. This team builds the essential infrastructure that enables machine learning at scale on Apple devices. This involves onboarding modern architectures to embedded systems, developing optimization toolkits for model compression and acceleration, building ML compilers and runtimes for efficient execution, and creating comprehensive benchmarking and debugging toolchains. This infrastructure forms the backbone of Apple’s machine learning workflows across Camera, Siri, Health, Vision, and other core experiences, supplying to the overall Apple Intelligence ecosystem. If you are passionate about the technical challenges of running sophisticated ML models across all devices, from resource-constrained devices to powerful clusters, and eager to directly impact how machine learning operates across the Apple ecosystem, this role presents a great opportunity to work on the next generation of intelligent experiences on Apple platforms. Our group is seeking an ML Infrastructure Engineer, with a focus on ML user experience APIs and integration. The role is responsible for developing new ML model conversion and authoring APIs that serve as the main entry point into Apple’s ML infrastructure. An engineer in this role will also drive the onboarding of popular and latest ML models—demonstrating end-to-end workflows that highlight both the authoring and runtime capabilities of Apple’s ML ecosystem with strong, competitive performance on Apple platforms. The role also involves integrating these APIs into internal and external systems (e.g., Hugging Face) to showcase the most efficient path for bringing models into Apple’s ML stack. This integration could involve a gamut of optimizations ranging from authored program optimizations (e.g., in PyTorch) to custom transformations within Apple’s model representation.

What the index says about this role

  • First seen by JobLarper — Aug 7, 2026, 1 day ago. Still inside the window where applications get read by a human rather than a pile.
  • No pay range in our index for this listing. Across 177 indexed DevOps & Site Reliability Engineer roles in US that do publish one, the middle half sits between $165k and $250k, median $204k — JobLarper's read of the market, not a figure from Apple.
  • What DevOps & Site Reliability Engineer roles ask for — across 1,405 indexed openings: Cloud (50%), Python (41%), REST/APIs (33%), Go (31%), Backend (24%). This posting names ML.
  • Apple is hiring actively — 47 open roles indexed.

Derived from the 27,000 roles JobLarper indexes daily from official company boards — not from the job description above.

⚡ JobLarper watched this role appear on Apple's official board on Aug 6, 2026. Sign up free to get alerted minutes after roles like this go live, and tailor your real résumé to the exact description — nothing invented.

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