Scientific Content Lead

Arena
Bay AreaPosted 5 March 2026

Job Description

Scientific Content Lead ABOUT ARENA INTELLIGENCE Arena Intelligence is the open platform for evaluating how AI models perform in the real world. Created by researchers from UC Berkeley’s SkyLab, our mission is to measure and advance the frontier of AI for real-world use. Millions of people use Arena Intelligence each month to explore how frontier systems perform — and we use our community’s feedback to build transparent, rigorous, and human-centered model evaluations. Leading enterprises and AI labs rely on our evaluations to understand real-world reliability, alignment, and impact. Our leaderboards are the gold standard for AI performance — trusted by leaders across the AI community and shaping the global conversation on model reliability and progress. We’re a team of researchers, engineers, academics, and builders from places like UC Berkeley, Google, Stanford, DeepMind, and Discord. We seek truth, move fast, and value craftsmanship, curiosity, and impact over hierarchy. We’re building a company where thoughtful, curious people from all backgrounds can do their best work. Everyone on our team is a deep expert in their field — our office radiates excellence, energy, and focus. ABOUT THE ROLE Arena is seeking a Scientific Content Lead to define and defend the scientific credibility of the world’s most trusted AI evaluation platform. You’ll ensure that Arena’s methodology, data quality practices, and evaluation results are understood clearly by researchers, labs, policymakers, analysts, and enterprises. This role is deeply technical and highly cross-functional. You’ll work directly with our research team to translate evaluation science into rigorous public communication and content, anticipate methodological critiques, and uphold Arena’s commitment to transparency and neutrality. YOU’LL - Own Arena’s scientific communications strategy, ensuring that our evaluation methodology, benchmarks, and data quality practices are clearly understood and accurately represented externally. - Lead Arena’s proactive data quality narrative, defending against common critiques and mischaracterizations through transparency, evidence, and high-integrity storytelling. - Develop canonical explanations of Arena’s measurement approach, including Bradley-Terry-Luce-style ranking, confidence intervals, and uncertainty-aware interpretation. - Ensure that Arena’s leaderboards are communicated responsibly: rankings are statistical estimates, small differences are often noise, and uncertainty must be preserved in public interpretation. - Anticipate, track, and respond to methodological critiques, especially around contamination, overfitting, gaming, distribution shift, and evaluation validity. - Partner closely with researchers to translate technical work into rigorous public materials, including methodology documentation, research posts, and open-source releases. - Support Arena’s Academic Partnerships Program, strengthening scientific connectivity through collaborations, citations, and peer-reviewed credibility. - Create briefing materials for high-stakes audiences, including frontier AI labs, policymakers, analysts, and enterprise partners, ensuring that technical nuance survives external scrutiny. - Serve as a scientific editor and reviewer across external communications, stress-testing claims before they become public narratives. YOU’LL HAVE - 8-10 years of experience in AI/ML, evaluation, research, or scientific communications, with deep familiarity in how frontier model performance is measured and debated. - Strong technical background in machine learning, benchmarking, or model evaluation, with the credibility to engage directly with leading labs and researchers. - Exceptional writing and communication skills, especially the ability to explain complex methodology clearly without oversimplifying or overstating conclusions. - Track record of producing scientifically rigorous external-facing work, such as technical publications, ev ... (truncated, view full listing at source)
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