Nuvepro - Task Intelligence for the Enterprise
OpenAI· Safety Systems· San Francisco

Researcher, Safety & Privacy

Comp$295K – $445K

Classified Tasks (11)

Automate 0%Augment 82%Human-Only 18%

Augment (9)

AI assists, human decides

Design and implement privacy-first architectures to detect and mitigate harmful model behaviors.

technical

Build frameworks for auditable, private identification of high-risk content such as jailbreaks, cyber threats, and weaponization instructions.

technical

Develop strict, auditable mechanisms that are triggered only by verified harm signals.

technical

Ensure privacy guarantees remain intact under adversarial conditions.

technical

Scale automated privacy-preserving safety systems to mitigate potential harms while minimizing human review.

operational

Research and develop privacy-preserving monitoring techniques, algorithmic auditing methods, secure enclave integrations, and adversarially robust safety enforcement protocols.

technical

Design and build the next generation of privacy-preserving safety systems for frontier AI models.

technical

Build evaluations, safeguards, and safety frameworks to ensure models behave as intended in real-world settings.

analytical

Implement auditable, privacy-first mechanisms that enable robust harm detection and mitigation without exposing sensitive user data.

technical

Human-Only (2)

Requires human judgment

Drive the development and deployment of automated safety systems that preserve user privacy at every level.

leadership

Define and operationalize frameworks to identify and address frontier risks (e.g., bioweapon instructions, malware creation, suicide/self-harm risks, jailbreaks).

operational

Job description

Researcher, Safety & Privacy | OpenAI Careers ## Researcher, Safety & Privacy Safety Systems - San Francisco Apply now(opens in a new window) **About the Team:**Our Safety Systems org ensures that OpenAI’s most capable models can be responsibly developed and deployed. We build evaluations, safeguards, and safety frameworks that help our models behave as intended in real-world settings. **About the Role:** We are seeking a Researcher in Privacy-Preserving Safety to help design and build the next generation of privacy-preserving safety systems for frontier AI models. This role sits at the intersection of AI safety, security, and privacy, with a focus on developing auditable, privacy-first mechanisms that enable robust harm detection and mitigation without exposing sensitive user data. You will help define and operationalize frameworks for identifying and addressing frontier risks (e.g., bioweapon instructions, malware creation, suicide/self-harm risks, jailbreaks), while ensuring that privacy guarantees remain intact—even under adversarial conditions. This role is central to our long-term goal of scaling our automated privacy-preserving safety systems to mitigate potential harms while minimizing human review. You’ll work on foundational problems such as privacy-preserving monitoring, algorithmic auditing, secure enclaves, and adversarially robust safety enforcement protocols, helping ensure that safety systems scale without compromising user trust. **In this role, you will:** * Design and implement privacy-first architectures for detecting and mitigating harmful model behaviors. * Build frameworks for auditable private identification of high-risk content (jailbreaks, cyber threats, or weaponization instructions). * Develop strict, auditable mechanisms triggered only by harm signals. * Drive the development of automated safety systems that preserve privacy at every level. **You might thrive in this role if you:** * Are a researcher with deep interest in privacy, security, and AI safety, motivated by building systems that are both trustworthy and effective at scale. * Hold a PhD or equivalent experience in Computer Science, Cryptography, Security, Machine Learning, or related fields * Have the ability to translate ambiguous problem spaces into formal frameworks and deployable systems * Demonstrate profiency in one or more of: + Privacy-preserving computation (e.g., secure enclaves, MPC, differential privacy) + Security and adversarial systems + Machine learning safety or alignment + Experience designing robust systems under adversarial threat models * Have experience with AI safety, jailbreak detection, or model alignment * Are familiar with privacy-preserving machine learning techniques, algorithmic auditing and/or secure system design **About OpenAI** OpenAI is an AI research and deployment company dedicated to ensuring that general-purpose artificial intelligence benefits all of humanity. We push the boundaries of the capabilities of AI systems and seek to safely deploy them to the world through our products. AI is an extremely powerful tool that must be created with safety and human needs at its core, and to achieve our mission, we must encompass and value the many different perspectives, voices, and experiences that form the full spectrum of humanity. We are an equal opportunity employer, and we do not discriminate on the basis of race, religion, color, national origin, sex, sexual orientation, age, veteran status, disability, genetic information, or other applicable legally protected characteristic. For additional information, please see OpenAI’s Affirmative Action and Equal Employment Opportunity Policy Statement. Background checks for applicants will be administered in accordance with applicable law, and qualified applicants with arrest or conviction records will be considered for employment consistent with those laws, including the San Francisc
Source: OpenAI careers · scraped 2026-05-22
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