Researcher, Pretraining Safety
OpenAISafety SystemsPosted 23 February 2026
Job Description
About the TeamThe Safety Systems team is responsible for various safety work to ensure our best models can be safely deployed to the real world to benefit the society and is at the forefront of OpenAI's mission to build and deploy safe AGI, driving our commitment to AI safety and fostering a culture of trust and transparency.The Pretraining Safety team’s goal is to build safer, more capable base models and enable earlier, more reliable safety evaluation during training. We aim to:Develop upstream safety evaluations that to monitor how and when unsafe behaviors and goals emerge;Create safer priors through targeted pretraining and mid-training interventions that make downstream alignment more effective and efficientDesign safe-by-design architectures that allow for more controllability of model capabilitiesIn addition, we will conduct the foundational research necessary for understanding how behaviors emerge, generalize, and can be reliably measured throughout training.About the RoleThe Pretraining Safety team is pioneering how safety is built into models before they reach post-training and deployment. In this role, you will work throughout the full stack of model development with a focus on pre-training:Identify safety-relevant behaviors as they first emerge in base modelsEvaluate and reduce risk without waiting for full-scale training runsDesign architectures and training setups that make safer behavior the defaultStrengthen models by incorporating richer, earlier safety signalsWe collaborate across OpenAI’s safety ecosystem—from Safety Systems to Training—to ensure that safety foundations are robust, scalable, and grounded in real-world risks.In this role, you will:Develop new techniques to predict, measure, and evaluate unsafe behavior in early-stage modelsDesign data curation strategies that improve pretraining priors and reduce downstream riskExplore safe-by-design architectures and training configurations that improve controllabilityIntroduce novel safety-oriented loss functions, metrics, and evals into the pretraining stackWork closely with cross-functional safety teams to unify pre- and post-training risk reductionYou might thrive in this role if you: Have experience developing or scaling pretraining architectures (LLMs, diffusion models, multimodal models, etc.)Are comfortable working with training infrastructure, data pipelines, and evaluation frameworks (e.g., Python, PyTorch/JAX, Apache Beam)Enjoy hands-on research — designing, implementing, and iterating on experimentsEnjoy collaborating with diverse technical and cross-functional partners (e.g., policy, legal, training)Are data-driven with strong statistical reasoning and rigor in experimental designValue building clean, scalable research workflows and streamlining processes for yourself and othersAbout OpenAIOpenAI 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 Francisco Fair Chance Ordinance, the Los Angeles County Fair Chan ... (truncated, view full listing at source)
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