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AP
AIML - Senior ML Engineer, Responsible AI and Safety
AppleNew York City, United Statesfull_timeVerifiedPosted 10 Jun 2026
About the role
Summary
Join Us in Shaping the Future of Generative AI at Apple! Are you passionate about making AI systems safer, more inclusive, and globally representative?Apple is seeking an expert Machine Learning Engineer to shape the future of responsible AI for the next generation of generative features. In this role, you will lead the responsible AI lifecycle end-to-end: assessing risks, defining policies, developing mitigation strategies, and driving continuous improvements. Your work will directly influence how we evaluate, align, and monitor the safety of large language and multimodal models.
As part of Apple’s Responsible AI group within the Human-Centered Machine Intelligence (HCMI) organization, you’ll collaborate with cross-functional partners to minimize unintended consequences across people, systems, and society while elevating feature capabilities and the overall user experience. Together, we’ll anticipate challenges, measure real-world impact, and deliver trusted, high‑quality AI experiences to users around the globe. You’ll also contribute to forward‑looking research in fairness, robustness, uncertainty, and safety — pushing the boundaries of responsible AI at scale.
Description
Our team leads Responsible AI initiatives for global generative AI products, operating at the intersection of policy, product, and GenAI. We're seeking candidates who will shape safety policies in partnership with leadership, design, engineering, legal, and regulatory stakeholders—ensuring our safeguards advance both user protection and product innovation.These individuals will work on architecture mitigation and safety alignment strategies for generative models, drive integration in production. Additionally, they will work on developing models, tools, datasets, and evaluation methods to monitor, diagnose failures, and improve the safety of generative models throughout the deployment lifecycle. We do all these by incorporating human and automated feedback, post‑launch to continuously improve feature safety and user trust.
Preferred Qualifications
BS, MS, or PhD in Computer Science, Machine Learning, or related field, or equivalent experienceProven success contributing in a highly cross‑functional environment
Experience shipping complex AI systems at global scale
Background in model explainability, uncertainty estimation, or interpretability
Curiosity and research interest in fairness, bias, and the societal impacts of generative AI
Passion for building innovative, high‑impact products that draw upon interdisciplinary skills
Minimum Qualifications
3+ years of proven ability in machine learning, including work with generative models (Transformers, LLMs, VLMs), NLP, or Computer VisionProficiency in Python and data science libraries (e.g. Pandas) with strong skills in data analysis, visualization, and applied ML workflows
Excellent interpersonal skills and proven ability to translate sophisticated technical insights for cross‑functional partners, senior leadership, and executives
Strong analytical and independent problem-solving skills, with ability to navigate ambiguity
Experience designing and supporting human and automated evaluations, particularly with complex, nuanced, or multi‑labeled data
Hands‑on experience collecting and analyzing language, vision, or multimodal datasets
Background in failure analysis, quality engineering, or robustness testing for ML‑driven systems
Must be comfortable working with sensitive or potentially offensive content
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