Sr. Software Development Engineer; Applied ML
Listed on 2026-06-08
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Software Development
AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Sr. Software Development Engineer (Applied ML)
We’re looking for a senior AI/ML engineer to do applied ML at the intersection of 3D geometry, manufacturing process, and the tacit expertise of the people who run that process. You’ll join the Data Science and Visualization (Data Viz) team in Hardware Engineering at Apple, working day-to-day in close partnership with Apple’s Advanced Development Lab (ADL) to bring machine learning into the heart of their machining and prototyping workflows.
Much of this work sits at the intersection of two things: CAD files that describe the parts ADL manufactures, and process knowledge that lives in the heads of engineers and machinists rather than in any document. Your job is to work with partners to surface that tacit expertise, encode it into tools they can rely on, and keep those tools honest with disciplined evaluation.
At Apple’s ADL (Advanced Development Lab), we seamlessly blend our expertise and creativity to deliver remarkable results that swiftly translate into exceptional products and customer experiences. We invite you to bring your visionary thinking and unwavering dedication to our esteemed organization. As a dynamic group of individuals, we take great pride in our work. Our specialized focus lies in crafting high-quality models, prototypes, and manufacturing/design solutions.
As a senior member of this team, you will design, build, and own ML systems end-to-end for ADL’s machining, design-for-manufacturing, and related engineering workflows, including the architectural calls about which approach fits a given problem and when to retire one that isn’t scaling. You’ll work directly with the people running those workflows: understanding their constraints, building tools they trust, and iterating with tight feedback loops.
You’ll choose the right tool for each job (classical statistics, classical ML, deep learning, generative AI, or pure algorithmic approaches) and make sure others understand your logic. The Data Viz team is small. You’ll be the senior ML IC partnering with data scientists and visualization engineers on our side, with engineers and machinists on the ADL side, and with a partner engineering team that contributes to the broader system.
Expect real autonomy on the architectural calls, and real accountability for whether the systems you ship still work six months later. We don’t expect any one candidate to bring every qualification below. What we care about most is the kind of thinking you bring to hard problems: clarity about what you do and don’t know, and the patience to work through ambiguity (and change your mind when the evidence asks you to).
If that resonates, we’d love to hear from you.
- Own ML systems end-to-end (problem framing through deployment) for ADL’s machining, design-for-manufacturing, and related engineering workflows.
- Architect multi-component AI workflows: how models, agents, and rule-based components compose, where boundaries should sit, and how the pieces stay debuggable as the system evolves.
- Work with 3D geometric data (CAD files) including reasoning about geometry as a first-class input to models rather than a side channel.
- Select and apply the right modeling approach per problem.
- Establish evaluation and monitoring strategies that survive contact with messy real-world data, including offline benchmarks, automated checks, and human-in-the-loop review.
- Communicate trade-offs, system behavior, and limitations clearly to technical and non-technical audiences.
- Bachelor’s + 7 YOE, Master’s + 5 YOE, or PhD + 2 YOE (or equivalent professional experience) in CS, Math, Statistics, Physics, Engineering, Robotics, or a similar analytical field, with the bulk of those years building ML systems in production or applied settings.
- Strong Python skills and fluency with the standard ML stack. Practical fluency with using and evaluating modern foundation models (LLMs, VLMs) in production matters more than depth in any one training framework.
- Full-lifecycle ML experience covering problem framing, data work, training, evaluation, and iteration with real users, including the judgment to…
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