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Machine Learning System Software Engineer

Apple
Posted 19 hours ago, valid for 18 days
Location

Sunnyvale, CA, US

Salary

Competitive

Contract type

Full Time

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At Apple, we're on the cutting edge of delivering transformative experiences through Artificial Intelligence. If you're passionate about pushing the boundaries of AI and hardware optimization, we want you to join our team! As a Machine Learning System Software Engineer on the Apple Neural Engine (ANE) team, you'll work to bring high-performance, low-power AI solutions to life on iconic Apple products like the Vision Pro, iPhone, iPad, Mac, and more.

Description


This is a dynamic opportunity to work in a creative, collaborative environment while developing groundbreaking technologies that will shape the future of computing! We are looking for an engineer with deep expertise in system software technology who is eager to tackle new challenges and responsibilities as the role evolves. As the position progresses, there will be opportunities to demonstrate technical leadership, influence key design decisions, collaborate with and support other engineers, and help guide the direction of Apple's AI-driven capabilities across the ecosystem. Are you ready to help us deliver the next groundbreaking Apple products?

Minimum Qualifications


BS and a minimum of 10 years relevant industry experience Experience defining interfaces that are used by other teams or external developers, with attention to lifecycle, error handling, and forward compatibility Deep proficiency in C and C++ in large, production system software Understanding of runtime systems: process/thread models, memory management, IPC/RPC, and resource lifecycle Understanding of software-hardware interfaces: registers, DMA, command queues, or similar accelerator interaction patterns Experience shipping production system software

Preferred Qualifications


Experience building or extending ML runtimes, inference engines, or accelerator driver stacks (e.g., TensorRT, ONNX Runtime, XLA, Metal, Vulkan compute, or similar) Familiarity with Swift/Rust or another memory-safe systems language Familiarity with ML model compilation pipelines and how runtime APIs interact with compiler outputs (graph IR, compiled binaries) Experience with multi-client runtime scenarios: arbitrating hardware access, managing priority/QoS, and handling client lifecycle (ex: connect, disconnect, crash recovery) Knowledge of neural network inference: operator execution, tensor memory layout, pipelining, and batching strategies Strong communication skills and experience working across team boundaries (framework teams, compiler teams, hardware teams)



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