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Research Engineer, Privacy
Job at a glance
- Category
- Privacy
- Work arrangement
- On-site
- Location
- San Francisco
- Posted
- Aug 11, 2026
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OpenAI is hiring a Research Engineer, Privacy in San Francisco. This is a Privacy job in the governance, risk, and compliance field. Review the full details below and apply directly with OpenAI.
About the Team The Privacy Engineering Team at OpenAI is committed to integrating privacy as a foundational element in OpenAI's mission of advancing Artificial General Intelligence (AGI). Our focus is on all OpenAI products and systems handling user data, striving to uphold the highest standards of data privacy and security. We build essential production services, develop novel privacy-preserving techniques, and equip cross-functional engineering and research partners with the necessary tools to ensure responsible data use. Our approach to prioritizing responsible data use is integral to OpenAI's mission of safely introducing AGI that offers widespread benefits. About the Role As a part of the Privacy Engineering Team, you will work on the frontlines of safeguarding user data while ensuring the usability and efficiency of our AI systems. You will help us understand and implement the latest research in privacy-enhancing technologies such as differential privacy, federated learning, and data memorization. Moreover, you will focus on investigating the interaction between privacy and machine learning, developing innovative techniques to improve data anonymization, and preventing model inversion and membership inference attacks. This position is located in San Francisco. Relocation assistance is available. In this role, you will: Design and prototype privacy-preserving machine-learning algorithms (e.g., differential privacy, secure aggregation, federated learning) that can be deployed at OpenAI scale. Measure and strengthen model robustness against privacy attacks such as membership inference, model inversion, and data memorization leaks, balancing utility with provable guarantees. Develop internal libraries, evaluation suites, and documentation that make cutting-edge privacy techniques accessible to engineering and research teams. Lead deep-dive investigations into the privacy–performance trade-offs of large models, publishing insights that inform model-training and product-safety decisions. Define and codify privacy standards, threat models, and audit procedures that guide the entire ML lifecycle, from dataset curation to post-deployment monitoring. Collaborate across Security, Policy, Product, and Legal to translate evolving regulatory requirements into practical technical safeguards and tooling. You might thrive in this role if you: Have hands-on research or production experience with PETs. Are fluent in modern deep-learning stacks (PyTorch/JAX) and
Full responsibilities and requirements are on OpenAI's application page.
Apply for this job →Location and market context
This job is based in San Francisco on-site. Local candidates benefit from being close to OpenAI's teams and regional hiring market. Confirm the exact in-office expectation and any relocation support with the employer.
About privacy jobs
Privacy jobs protect personal data across its lifecycle, from data mapping and DPIAs to individual-rights handling. AI systems are widening the scope of what privacy teams must review. Jobs like this one are typically evaluated against frameworks such as GDPR, CCPA and US state privacy laws, ISO/IEC 27701, and privacy-by-design practices.
How to position yourself for this privacy job
Strong candidates emphasize data mapping and inventories, privacy impact assessments, rights handling, and building privacy-by-design into products and AI systems. In your resume and outreach, tie your experience to how OpenAI would apply GDPR, CCPA and US state privacy laws, ISO/IEC 27701, and privacy-by-design practices, and lead with concrete outcomes rather than duties.
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