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Apple AR/VR Job | ML Compute Acceleration Engineer

Job(岗位): ML Compute Acceleration Engineer

Citys(岗位城市): Cupertino, California, United States

Date(发布日期): 2025-1-29

Summary(岗位介绍)

Apple’s Compute Frameworks team in GPU, Graphics and Displays org provides a suite of high-performance data parallel algorithms for developers inside and outside of Apple for iOS, macOS and Apple TV. Our efforts are currently focused in the key areas of linear algebra, image processing, machine learning, along with other projects of key interest to Apple. We are always looking for exceptionally dedicated individuals to grow our outstanding team to lay the foundation of technologies like Apple Intelligence.

Qualifications(岗位要求)

Proven programming and problem-solving skills.

Good understanding of machine learning fundamentals.

GPU compute programming models & optimization techniques.

GPU compute framework development, maintenance, and optimization.

Experience with system level programming and computer architecture.

Experience with high performance parallel programming, GPU programming or LLVM/MLIR compiler infrastructure is a plus.

Description(岗位职责)

Our team is seeking extraordinary machine learning and GPU programming engineers who are passionate about providing robust compute solutions for accelerating machine learning networks on Apple Silicon using GPU and Neural Engine.

Role has the opportunity to influence the design of compute and programming models in next generation GPU and Neural Engine architectures.

- Responsibilities:

- Adding optimizations in machine learning computation graph.

- Defining and implementing APIs in Metal Performance Shaders Graph, investigating new algorithms.

- Developing and maintaining MLIR

Additional Requirements(额外要求)

Background in mathematics, including linear algebra and numerical methods.

Strong communication and collaboration skills.

Strong background of building high performance, production quality software on schedule.

Experience with compiler technologies.

Experience with adding computational graph support, runtime or device backend to Machine learning libraries (TensorFlow, PyTorch or JAX) support is a plus.

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