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Novel AI Lead Methodologist

Google
Posted a day ago, valid for 12 days
Location

Seattle, WA, US

Salary

$171,000 - $247,000 per year

Contract type

Full Time

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Sonic Summary

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  • The position requires a Bachelor's degree and a minimum of 10 years of experience in AI testing, research, data analytics, or a related field.
  • Preferred qualifications include a Master's degree or PhD and 5 years of experience in data analysis for AI Testing, particularly with SQL or Python.
  • The role involves developing novel testing methodologies for emergent AI and collaborating with engineering teams to build automated evaluation tools.
  • The salary for this position ranges from $171,000 to $247,000, along with a 20% bonus target, equity, and benefits.
  • Candidates must possess strong technical skills and a researcher’s mindset to address complex testing questions and ensure safety standards are met.

Minimum qualifications:

  • Bachelor's degree or equivalent practical experience.
  • 10 years of experience in AI testing or research, data analytics, data science, or a related field.

Preferred qualifications:

  • Master's degree or PhD in relevant field.
  • 5 years of experience in data analysis for AI Testing with experience in SQL or Python.
  • Experience building or partnering with engineering teams to build prototypes for AI testing.
  • Experience in designing and conducting experiments or quantitative research, preferably in a technology or AI context.
  • Experience in AI systems, machine learning, and their potential risks.
  • Strong technical competency with a data-driven investigative approach to solve complex tests, including demonstrable proficiency in data manipulation, analysis, and automation using languages like Python and SQL.

About the job:

Novel Testing is a team within Trust and Safety specializing in complex testing, defining protocols and methodologies for assessing risk where best practices do not currently exist. We pioneer and scale testing programs, streamlining the launch of trustworthy, novel AI products.

Work spans from designing first-of-their-kind evaluations for Google’s most ambitious product bets—including autonomous agents, personalization, and the latest hardware—to developing new methodologies for assessing novel foundational model capabilities as they emerge.

Advancing in AI evaluation is central to this mission. To scale these methods, we partner closely with engineering teams to build the infrastructure and tools required for automated evaluation.

In this role, you will lead the development of novel testing methodologies for emergent AI, designing evaluation frameworks where established standards do not yet exist. You will address complex testing questions with creative experimentation, designing sophisticated prompt strategies and quantitative analyses to identify systemic risks and edge cases in GenAI products.

Bridging the gap between theory and execution, you will move quickly to build and prototype testing solutions that incorporate methodological best practices. You will then partner directly with data science and engineering teams to inform the development of novel testing approaches and automated infrastructure, ensuring your insights scale effectively across Google’s ecosystem. This position demands a researcher’s mindset—capable of deep qualitative and quantitative inquiry—paired with the technical agility to translate those findings into scalable, engineering prototypes.

Individual pay is determined by factors including job-related skills, experience, and relevant education or training.

US: $171000 - $247000 (USD) + 20% bonus target + equity + benefits

Learn more about benefits at Google.

Responsibilities:

  • Drive the methodological frontier of model evaluation. Partner with DeepMind and Data Science, developing novel, data-driven methodologies for structured and unstructured testing of emerging AI products. Move beyond standard benchmarks, designing sophisticated experimental frameworks, uncovering latent model behaviors and capabilities.
  • Define testing and safety standards, working with cross-functional colleagues to ensure they are met. Perform analyses and drive insights to develop model-level and product-level safety mitigations.
  • Lead and influence cross-functional teams to implement safety initiatives. Advise executive leadership on complex safety issues.
  • Represent Google's AI safety efforts in external forums and collaborations, contributing to industry-wide best practices. Mentor analysts, fostering a culture of excellence, acting as a subject matter expert on adversarial techniques.
  • Work with sensitive content or situations and may be exposed to graphic, controversial or upsetting topics or content.



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