AIML - Distinguished Engineer, Foundation Model - Jobs - Careers at Apple
- Set and drive the technical vision and roadmap for the foundation model
- team's inference engine and the systems around it, used for training,
- evaluation, and LLM-as-judge workloads.
- Lead deep work on inference performance, efficiency, and reliability:
- throughput and latency optimization, batching and scheduling, quantization,
- speculative decoding, KV-cache management, memory and compute efficiency, and
- hardware-aware optimization.
- Architect inference systems that support a wide range of internal use cases —
- data generation and rollouts for training, offline and large-scale evaluation,
- and judge/reward scoring — across text, image, speech, and multi-modal models,
- each with distinct throughput, cost, and quality constraints.
- Extend your impact into adjacent systems areas — training infrastructure, data
- pipelines, and evaluation harnesses.
- Partner with many teams that depend on the engine, translating their diverse
- needs into a coherent platform, clear interfaces, and a prioritized roadmap.
- Work closely with ML researchers and modeling teams to co-design models and
- systems, and to bring state-of-the-art techniques from prototype into the
- development loop reliably.
- Lead a diverse set of engineers across teams in setting direction and
- executing against it; align stakeholders, resolve technical trade-offs, and
- make the calls that keep large efforts moving.
- Drive prioritization and milestone delivery across competing demands, balancing
- near-term research needs against long-term platform investment.
- Mentor and grow junior and senior engineers; establish engineering
- standards, review designs, and multiply the impact of the organization.
- MS or PhD in Computer Science, Machine Learning, or related technical field,
- or equivalent industry experience.
- 15+ years of experience building large-scale ML or distributed systems, with
- a track record of technical leadership and industry-wide or company-wide
- impact.
- Deep, hands-on expertise in foundation model inference engines, with a proven
- record of improving performance, efficiency, and reliability at scale.
- Deep experience supporting a diverse set of foundation model inference use
- cases, each with different throughput, latency, cost, and quality constraints.
- Breadth beyond inference — the ability to contribute in adjacent systems areas
- such as training infrastructure, data systems, or evaluation.
- Deep understanding of GPU/TPU/accelerator architecture, distributed systems, and
- model optimization (quantization, distillation, compilation, serving).
- Proficiency with ML frameworks such as JAX, PyTorch, and with
- inference/serving stacks.
- Proven experience leading a diverse set of engineers in setting vision and
- driving execution, including prioritization for milestone deliveries.
- Demonstrated experience mentoring junior and senior engineers.
- Demonstrated experience partnering with ML researchers and modeling teams to
- productionize research.
- Experience building or leading inference systems for large language models and
- multi-modal foundation models at scale.
- Experience with inference in training, evaluation, or reinforcement-learning
- loops (e.g., large-scale rollouts, offline eval, or LLM-as-judge / reward
- scoring).
- Familiarity with Kubernetes, Docker, and cloud platforms (AWS, GCP, Azure),
- and with distributed computing frameworks.
- History of defining technical strategy that shaped an organization's or the
- industry's direction.
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Required Skills
Required Languages
🇬🇧 English