Software Development Engineer - Test, Graphics, Games & ML
Listed on 2026-06-25
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Software Development
Machine Learning/ ML Engineer, Software Engineer, DevOps, Cloud Engineer - Software
Summary
The On-Device Machine Learning team at Apple enables the Research to Production lifecycle of innovative machine learning models that power magical user experiences on Apple’s hardware and software platforms. Apple is the best place to do on-device machine learning, and this team sits at the heart of that subject area, collaborating with research, SW engineering, HW engineering, and products. Apple's On device Machine Learning Infrastructure and Quality team is seeking a highly motivated and detail oriented software engineer to drive innovations in quality for on device intelligence.
The successful candidate will be passionate about delivering the best possible experience for our users and is continuously looking for new ways to measure and improve the quality of our software stack and infrastructure. Additionally, having the ability to switch between designing creative product usage scenarios and immersive analysis of detailed feature design will be a critical skill to possess.
The Software Development Engineer
- Test will interact multi-functionally with many teams across Apple, impacting all levels of the Apple’s on device machine learning stack including hardware, drivers, frameworks and developer tools. In addition, you will develop and implement comprehensive manual /automated test plans and maintaining CI/CD presubmission pipelines. You will also be the voice of our customers, championing quality software development through each step of the development process and driving quality improvements throughout the organization.
- Your primary responsibility will be to define, measure, and improve the quality of on- device machine learning technologies by developing infrastructure, automation and services which facilitate validation and qualification of these technologies.
- BS, MS, degree or equivalent
- 2+ years of related experience in software quality engineering
- In depth knowledge of QA practices and fundamentals
- Strong Python programming skills
- Experience with Machine Learning, its common practical applications, and commonly used frameworks (e.g. Keras, PyTorch, Tensorflow, Scikit-learn)
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