Pacific Northwest National Laboratory

Senior Data Scientist IV - AI Safety

Technical Services
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • BS/BA with 7+ years or MS/MA with 5+ years or PhD with 3+ years of relevant experience.
  • Strong background in AI safety and trustworthy AI research.
  • Proven experience leading R&D projects and technical teams.
  • Hands-on experience with hands-on data analytics and AI evaluation techniques.
  • Familiarity with operational constraints in national security contexts.

Responsibilities

  • Set technical direction for AI safety projects and research efforts.
  • Translate operational needs into actionable AI safety requirements.
  • Lead design, implementation, and validation of AI model evaluations.
  • Rapidly evaluate and prototype new techniques for AI safety.
  • Mentor researchers at various stages of their careers.
  • Develop AI safety methods across multiple dimensions.
  • Engage with stakeholders to align technical work with mission outcomes.

Benefits

  • Collaborative and innovative work culture focused on continued learning.
  • Opportunity to work at the intersection of AI and national security.
  • Access to interdisciplinary teams combining diverse expertise.
  • Engagement with real-world challenges in AI safety.
Full Job Description
Responsibilities

The AI & Data Analytics division is seeking to hire a Senior Data Scientist for AI Safety applied research. This role blends foundational research with real-world implementation to address some of the most complex and consequential challenges at the intersection of artificial intelligence and national security. We support PNNL's mission by contributing to impactful, mission-focused applied R&D projects that help tackle national challenges.

Work Location & Requirements
  • Based in Richland, WA or Seattle, WA with onsite presence required
  • Clearance required (see below for details)
  • Travel may be required for stakeholder engagement or project events


Key Responsibilities

As a Senior Data Scientist (Data Scientist 4), you will serve as a senior technical expert and leader setting technical direction and vision for AI Safety research, drive proposal development, mentor early through senior researchers, and engage directly with stakeholders. Key responsibilities include:
  • Set technical direction for projects developing and applying safety methods and pipelines that analyze model internals (e.g., attention, routing, memory, tokenization, tool-use) and/or surface failure modes, capabilities, and risk profiles.
  • Engage with stakeholders to translate mission needs and operational constraints into actionable safety requirements, test plans, and success criteria aligned with mission-driven goals.
  • Lead projects and programs to design, implement, and validate model evaluation for cutting edge AI including frontier AI systems (e.g. LLMs, LVMs, multimodal, agentic) or development/verification of safety controls and guardrails.
  • Translate cutting-edge research into mission-relevant tools and prototypes; rapidly evaluate new techniques and standards in AI safety, algorithm or system evaluation, and trustworthy AI.
  • Lead development of AI safety methods across multiple axes: robustness, uncertainty quantification, manipulation, autonomy and tool-use risks, stress testing, generalization, or reliability under distribution shift.
  • Build effective relationships across teams and divisions; mentor junior and senior staff; cultivate an inclusive, collaborative research culture.
  • Maintain awareness of emerging trends in AI safety, AI security, alignment, national security operations, and relevant standards to shape future research directions.


Knowledge, Skills, and Abilities
  • Ability to collaborate in multi-disciplinary, mission-driven teams and operate effectively in high-stakes
  • Demonstrated proficiency in leading proposals, writing technical reports, and communicating complex findings to diverse audiences (technical and executive).
  • Knowledge of compute environments and their cybersecurity concerns; familiarity with secure ML ops, access control, and model/data governance.
  • Deep knowledge of the current ML research landscape, especially AI safety, adversarial machine learning, xAI/interpretability, uncertainty quantification, and the science of deep learning.
  • Hands-on experience analyzing internal structures of deep learning models, particularly LLMs and large vision/multimodal models (tokenization, attention mechanisms, routing, weight adaptation, loss optimization) or modalities including hyperspectral imagery.
  • Experience designing and executing T&E campaigns for AI systems, including test planning, dataset curation, metrics, statistical analysis, and reproducibility.
  • Software engineering foundations: Python, ML frameworks (PyTorch/TensorFlow), experiment tracking, and data pipeline tooling.
  • Strong stakeholder engagement skills and the ability to connect technical safety work to operational mission outcomes.
  • Proven track record delivering AI safety/evaluation work products in complex domains, including National Security.
  • Hands-on experience with LLM/LVM/Foundation Model and Frontier AI evaluation, red-teaming, uncertainty analysis, or safety control implementation.
  • Experience leading federally funded R&D projects, with publications, open-source contributions, or deployable prototypes.


Team & Culture

We foster a collaborative and innovative environment centered on continued learning, creative problem-solving, and responsible, data-driven innovation. You will work as part of interdisciplinary teams to deliver AI safety solutions for high-stakes, real-world applications. Our teams combine expertise in AI and machine learning, software engineering, human-centered design, and national security missions.

Read more about the AI & Data Analytics division: https://www.pnnl.gov/ai-and-data-analytics

Qualifications

Minimum Qualifications:
  • BS/BA and 7+ years of relevant work experience -OR-
  • MS/MA and 5+ years of relevant work experience -OR-
  • PhD with 3+ years of relevant experience

Preferred Qualifications:
  • Experience serving as PI, technical lead, or project manager on multi-institution R&D efforts.
  • Demonstrated impact in safe and trustworthy AI (e.g., peer-reviewed publications, recognized awards, contributions to community standards).
  • Familiarity with agentic AI safety (tool-use governance, retrieval hygiene, autonomous decision workflows) and evaluation of multi-step reasoning systems.
  • Experience with privacy-preserving ML (e.g., differential privacy, federated learning), robust training methods, and secure data lifecycle practices.
  • Background working with or mapping to relevant frameworks/standards (e.g., AI safety/testing best practices, risk management frameworks) and translating them into test and evaluation plans.
  • Prior work in national security environments, with an understanding of mission needs and operational constraints.
  • Active DOE Q or TS/SCI clearance.

Hazardous Working Conditions/Environment

Not applicable.

Additional Information

This position requires the ability to obtain and maintain a federal security clearance.

About Pacific Northwest National Laboratory

Pacific Northwest National Laboratory (PNNL) is a United States Department of Energy national laboratory that conducts research and development in areas including energy, environment, and national security. PNNL is operated by Battelle Memorial Institute and is located in Richland, Washington. The laboratory was established in 1965 as the Battelle Northwest Laboratory and was renamed to its current name in 1997. PNNL has a staff of over 4,000 scientists, engineers, and support staff, and has an annual budget of over $1 billion. The laboratory has been involved in a number of high-profile projects, including the development of the first artificial heart and the cleanup of the Hanford Site, a decommissioned nuclear production complex.
Learn more about Pacific Northwest National Laboratory
Size
5,000 employees
Industry
Founded
1965

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