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Meta

Research Engineer, Safety Evaluation

menlo park, CA

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About this opportunity

Meta lists this Research Engineer, Safety Evaluation opportunity in menlo park, California. Review the employer’s description below for duties, qualifications and application requirements.

Job description

Meta is seeking a Research Engineer to join the Safety Evaluation team within Meta Superintelligence Labs. Our mission is to make the safety of Meta's frontier AI systems measurable — turning ambiguous notions of "safe" into rigorous, defensible metrics that model developers, product teams, and company leadership rely on to make launch decisions.Safety evaluation is the ground truth for every safety claim Meta makes. This role owns that ground truth: designing the evaluations that detect emerging risks in text, image, voice, video, and agentic systems; building the infrastructure that runs them continuously against training checkpoints and production traffic; and setting the technical direction for how safety is measured across Meta's AI portfolio. You will define measurement standards that outlast any single model generation, and your results will directly gate what ships to billions of people.

Research Engineer, Safety Evaluation Responsibilities:

Set the technical strategy for safety evaluation across multiple model families and modalities, and drive it to execution across teams

Design, implement, and validate novel evaluations for safety-critical behaviors — policy adherence, adversarial robustness, agentic risk, jailbreak resistance, and emerging harm categories — including for capabilities with no established benchmark

Build and harden the distributed evaluation platform so that hundreds of evals run reliably and continuously against checkpoints throughout large-scale training runs

Own the measurement quality bar: signal-to-noise, statistical power, saturation, contamination, and construct validity — and establish when an eval is trustworthy enough to gate a launch

Create, curate, and analyze high-quality safety datasets, including adversarial, borderline, multilingual, and long-tail cases

convert real-world incidents and red-team findings into durable, repeatable safety signals

Diagnose anomalous eval results mid-training-run, determine whether the cause is a model change or an infrastructure artifact, and communicate a clear answer under time pressure

Own the dashboards and reporting that researchers, product partners, and leadership use to monitor safety during training and post-launch

Translate evolving global safety policy and regulatory standards into concrete, testable measurement criteria, partnering with Policy, Legal, and Integrity

Influence the roadmaps of partner research and product teams

mentor engineers and researchers and raise the evaluation bar across the org

Represent Meta's safety evaluation methodology to internal leadership and, where appropriate, to external audiences and the research community

Minimum Qualifications:

Bachelor's degree in Computer Science, Computer Engineering, relevant technical field, or equivalent practical experience

Bachelor's degree in Computer Science, Computer Engineering, a relevant technical field, or equivalent practical experience

3+ years of industry research or research-engineering experience in ML/AI, including hands-on work with LLMs, multimodal models, or NLP

Demonstrated experience setting technical direction for a large, ambiguous problem area and driving it to delivery across multiple teams

Experience designing and validating evaluations or benchmarks for ML systems, including reasoning about metric reliability and failure modes

Experience building production-grade or research infrastructure that must be reliable at scale — distributed systems, data pipelines, or evaluation harnesses

Programming experience in Python and hands-on experience with frameworks such as PyTorch

Experience communicating complex technical results to non-specialist stakeholders and decision-makers

Preferred Qualifications:

Experience translating regulatory or policy requirements into technical measurement criteria

Experience evaluating LLMs across multiple languages and modalities (text, image, voice, video, reasoning, tool use)

Experience operating in an on-call or production-support capacity for live training runs or safety-critical systems

Experience evaluating agentic systems — multi-step tool use, autonomy, and oversight mechanisms

Publications at peer-reviewed venues (e.g. ICLR, NeurIPS, ICML, ACL, CVPR, ICCV, FAccT) with a track record in evaluation, alignment, or AI safety

Experience with large-scale distributed training (hundreds/thousands of GPUs) and evaluating models in-flight during training

Experience with adversarial evaluation and red-teaming, including automated attack generation and jailbreak robustness measurement

experience with observability, monitoring, or experiment-tracking systems

Background in statistics and experimental design

About Meta:

Meta builds technologies that help people connect, find communities, and grow businesses. When Facebook launched in 2004, it changed the way people connect. Apps like Messenger, Instagram and WhatsApp further empowered billions around the world. Now, Meta is moving beyond 2D screens toward immersive experiences like augmented and virtual reality to help build the next evolution in social technology. People who choose to build their careers by building with us at Meta help shape a future that will take us beyond what digital connection makes possible today—beyond the constraints of screens, the limits of distance, and even the rules of physics.

Meta is proud to be an Equal Employment Opportunity and Aff… we do not discriminate based upon race, religion, color, national origin, sex (including pregnancy, childbirth, or related medical conditions), sexual orientation, gender, gender identity, gender expression, transgender status, sexual stereotypes, age, status as a protected veteran, status as an individual with a disability, or other applicable legally protected characteristics. We also consider qualified applicants with criminal histories, consistent with applicable federal, state and local law. Meta participates in the E-Verify program in certain locations, as required by law. Please note that Meta may leverage artificial intelligence and machine learning technologies in connection with applications for employment.

Meta is committed to providing reasonable accommodations for candidates with disabilities in our recruiting process. If you need any assistance or accommodations due to a disability, please let us know at

$219,000/year to $301,000/year + bonus + equity + benefits

Individual compensation is determined by skills, qualifications, experience, and location. Compensation details listed in this posting reflect the base hourly rate, monthly rate, or annual salary only, and do not include bonus, equity or sales incentives, if applicable. In addition to base compensation, Meta offers benefits. Learn more about benefits at Meta.

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Worksite address

menlo park, CA, 94029, US

Who can apply

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