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Staff/Sr. ML Infrastructure Engineer, Foundation Model Compute Infra
AppleUnited Statesfull_timeVerifiedPosted 21 Jul 2026
About the role
Summary
Apple is where individual imaginations gather together, committing to the values that lead to great work. Every new product we build, service we create, or Apple Store experience we deliver is the result of us making each other’s ideas stronger. That happens because every one of us shares a belief that we can make something wonderful and share it with the world, changing lives for the better. It’s the diversity of our people and their thinking that inspires the innovation that runs through everything we do. When we bring everybody in, we can do the best work of our lives. Here, you’ll do more than join something — you’ll add something!Description
As a Senior/Staff Engineer on the Foundation Model Compute Infrastructure team, you will design and build large-scale infrastructure that powers foundation model training, fine-tuning, evaluation, and inference. You will develop model inference and fine-tuning services, onboard and benchmark new accelerators, and work closely with foundation model researchers and engineers to improve reliability, performance, scalability, and developer productivity across Apple’s AI workloads.Preferred Qualifications
Experience building schedulers, resource managers, or orchestration systems for distributed workloadsFamiliarity with frameworks such as JAX, PyTorch, TensorFlow, Ray, Pathways, or vLLM
Experience operating large-scale multi-tenant infrastructure in cloud or hybrid environments
Background in performance optimization, fault tolerance, or resource efficiency for large distributed systems
Strong expertise in distributed systems, scalability, reliability, and performance engineering
Experience designing backend services or infrastructure platforms operating at production scale
MS or PhD in Computer Science, Engineering, or related field
Minimum Qualifications
5+ years of industry experience building large-scale distributed systems or cloud infrastructureExperience with distributed ML training or inference systems
Strong programming skills in Python, Go, C++, or similar systems languages
Experience with accelerator infrastructure such as TPU, GPU
Experience with Kubernetes, container orchestration, or large-scale cluster management systems
Strong communication and collaboration skills across engineering and research teams
Bachelor’s degree in Computer Science, Engineering, or related field
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