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Tom David

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Tom David is President of the GPAI Policy Lab, a Campus Cyber–based policy lab that fosters international cooperation on general-purpose AI security and control through research, strategic advising, and training, and he is also co-founder of PRISM Eval, which specializes in stress-testing generative AI models on critical behaviors.

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Saad Siddiqui

Individual
substack.com

Senior AI Policy Researcher at the Safe AI Forum and Research Affiliate at the Oxford Martin AI Governance Initiative, focusing on identifying areas of possible agreement between leading AI powers and supporting the International Dialogues on AI Safety (IDAIS). Previously a Winter Fellow at the Centre for the Governance of AI in Oxford and a management consultant at Bain & Company in Singapore, he holds a Master’s in Global Affairs from Tsinghua University’s Schwarzman Scholars programme and a bachelor’s in Politics and Anthropology from the University of Cambridge.

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Tilman Räuker

Individual
raeuker.com

Tilman Räuker is Co-Director of Pivotal Research, a fellowship program supporting researchers working on global catastrophic risk reduction with a focus on technical AI safety and AI governance. He holds a Master's degree from Leibniz University Hannover, where his thesis focused on temporally-extended reinforcement learning in dynamic algorithm configuration. His research centers on mechanistic interpretability and understanding the internal representations of deep neural networks, including work on transformer world models. He co-authored the widely-cited survey "Toward Transparent AI: A Survey on Interpreting the Inner Structures of Deep Neural Networks" (SaTML 2023), as well as papers on structured world representations and causal world models in maze-solving transformers, published at NeurIPS and ICLR. He previously served as a Technical AI Safety Research Manager at the ERA Fellowship and led requests for proposals on Cybersecurity AI and AI Agent Evaluation at the AI Safety Fund. He also participated in a FAR Labs residency researching goal-directedness in transformer models.

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Wyatt Johnson

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Giles Edkins

Individual

Software engineer on the benchmarking team at Epoch AI, working on infrastructure for running AI benchmarks and improving new benchmarks, with prior experience in data science and cloud infrastructure at BlueCat and embedded GPU technology at Broadcom, and a degree in Mathematics and Computer Science from Oxford.

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Preeti Ravindra

Individual
preetiravindra.info

Preeti Ravindra is a Senior AI Security Researcher at Confidential AI Neocloud and a technical leader who has spent over a decade applying AI to security problems to make AI systems more reliable and trustworthy. Her career spans startups to Fortune 100 companies, where she has advanced research into scalable, revenue‑aligned systems and worked across security operations, detection engineering and vulnerability management while bridging research and engineering execution. She is a recognised industry voice, speaking at conferences such as DEFCON and BSides, serving on program committees for WiCyS and CAMLIS, and helping bridge the AI and security communities while supporting early‑career professionals.

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Mohsin Chohan

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Ben Thomas

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Matt Sheehan

Individual
mattsheehanwork.github.io

Matt Sheehan is a senior fellow in the Asia Program at the Carnegie Endowment for International Peace, where he researches global technology issues with a focus on China’s artificial intelligence ecosystem, technology policy, and political economy.

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Sunishchal Dev

Individual

Sunishchal Dev is an AI evaluation research scientist at RAND, where his work focuses on evaluating and governing artificial intelligence systems. Before joining RAND, he spent about a decade in industry as a data scientist and management consultant implementing AI solutions, and he holds a B.A. in technology and innovation management from the University of Washington Bothell.

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Aisha G.

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Anish Upadhayay

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Co-Founder of the AI Safety Initiative at Georgia Tech and fourth-year computer science student who also helped co-found the Effective Altruism club at Georgia Tech and is interested in AI safety field-building and technical work to mitigate long-term risks from transformative AI.

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Katerina Manoli

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Katerina Manoli is a researcher with Sentience Institute who has a background in philosophy, psychology, and neuroscience and is a PhD student at the Max Planck Institute for Human Cognitive and Brain Sciences in Leipzig, Germany. She has conducted research on the perception of artificial agents and the ethics of human AI interaction at institutions including the Donders Institute for Brain, Cognition and Behaviour, Harvard Universitys Department of Social Studies, and the University of Glasgows School of Psychology and Neuroscience, and has served on boards of effective altruism organizations and as a STEM mentor for Effective Thesis.

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Michael Hanna

Individual
hannamw.github.io

Michael Hanna is a PhD student at the Institute for Logic, Language and Computation at the University of Amsterdam whose research focuses on interpreting and evaluating NLP models. As an Anthropic Fellow he led the development of the circuit-tracer library for feature circuits, which he now maintains as an open-source project integrated with Neuronpedia and supported by Decode Research.

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Kunvar Thaman

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kunvarthaman.com

Kunvar Thaman is a machine learning research engineer at Standard Intelligence in San Francisco. He studied at the Birla Institute of Technology and Science (BITS), Pilani. His work focuses on training large-scale neural networks and mechanistic interpretability research — reverse-engineering the internal computations of neural networks to understand how they work. He co-authored "Benchmark Inflation: Revealing LLM Performance Gaps Using Retro-Holdouts," presented at ICML 2024, which introduces a methodology called retro-holdouts to measure how much public benchmark scores are inflated by training data contamination. He also participated in AI Safety Camp (AISC9) where his team applied mechanistic interpretability methods to study out-of-context learning in neural networks. He maintains a research site at mechinterp.com and writes at kunvarthaman.com.

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Federico L.G. Faroldi

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sites.google.com

Federico L.G. Faroldi is a professor of Ethics, Law and Artificial Intelligence at the University of Pavia, where he directs the Center for Reasoning, Normativity and AI (CERNAI) and the Normative Risk Lab and holds a 1.2m € FIS grant on "generic reasoning". He is also affiliate faculty at UC Berkeley's Center for Human-Compatible AI (CHAI). His current research focuses on AI safety and risk (especially regulation and governance), AI alignment using normative reasons, deontic and modal logic, truthmaker semantics, and the law and ethics of artificial intelligence.

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David Corfield

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davidcorfield.info

Executive coach, writer, and serial social entrepreneur; founder and Executive Director of Original Position and creator of What Future World?, and previously Executive Director of The AI Governance Archive (TAIGA) as well as co-founder of LifeWork and the Small Business School Challenge.

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Cheri F. McGuire

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Daniel Kendzior

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Clara Kaluderovic

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Jason Crawford

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jasoncrawford.org

Jason Crawford is the founder and president of the Roots of Progress Institute, a nonprofit dedicated to building a culture of progress and restoring an ambitious vision of the future. He writes and speaks about the history and philosophy of progress, particularly in technology and industry, and hosts the Progress Conference. He spent 18 years as a software engineer, engineering manager, and startup founder, including as co-founder and CEO of Fieldbook, and held engineering management roles at Flexport, Amazon, and Groupon. He holds a B.S. in Computer Science from Carnegie Mellon University. He is a Founding Fellow at the Cosmos Institute and an advisor to the Foresight Institute, and was formerly a part-time technical consultant to Our World in Data. His forthcoming book, The Techno-Humanist Manifesto, is to be published by MIT Press. He has received funding from Open Philanthropy, Emergent Ventures, the Long-Term Future Fund, and the Survival and Flourishing Fund, and has been named to Vox's Future Perfect 50 list.

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Nik Nanos CM, ICD.D

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Rishon Chimboza

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Hadeia Amiry

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Jared Cohen

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Ofer Hermoni, Ph.D.

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Beverly Lee

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Nidish Vashistha, Ph.D.

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Işıl Selen DENEMEÇ, LL.M.

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Alen Zenicanin

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Philippe Rivet

Individual

Philippe Rivet is a Canadian electrical engineer based in Toronto, Ontario, who has pursued applied technical AI alignment research. He received an NSERC Undergraduate Student Research Award during his undergraduate studies and later completed studies related to machine learning and AI safety, including coursework from Dan Hendryck's ML Safety program. His GitHub profile reflects interests in evolutionary computing, reinforcement learning, interpretability, and AI alignment. He has described his path as a "costly attempt at AI safety research" and has since considered earning-to-give as an alternative contribution to effective altruism. He received a $10,000 grant in support of applied technical AI alignment research. He is active in the effective altruism community, having published a post on the EA Forum titled "The Highly Sensitive EA," and maintains interests in contemplative practice and philosophy.

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Luciana Ferrer

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liaa.dc.uba.ar

Independent researcher at the Institute of Computer Science (ICC), CONICET‑UBA, with an Electrical Engineering PhD from Stanford University; her main research area is machine learning applied to speech and language processing.

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Dr. Ole Wintermann

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Alexis Carlier

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Alexis Carlier is the co-founder and CEO of Asymmetric Security, an AI-native digital forensics and incident response company that emerged from stealth in early 2026 with $4.2M in pre-seed funding. He was previously part of the founding team at the Centre for the Governance of AI (GovAI), where he served as Head of Strategy and contributed to the organization's transition from Oxford to an independent nonprofit. He also led AI security programs at RAND and the University of Oxford. Carlier holds a Master's degree in Economics from the Toulouse School of Economics. He received a Long-Term Future Fund grant in 2020 to survey leading AI safety and governance researchers on their beliefs about AI existential risk scenarios, work that was later published on the EA Forum and LessWrong co-authored with Sam Clarke and Jonas Schuett. He has also co-authored academic papers on AI governance topics including AI ethics board design and frontier AI regulation.

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Neil Sheridan, MBA, MS, CPM

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Marcia X. Chong Rosado

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Neil Crawford

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Neil Crawford is a PhD student in Logic and Philosophy of Science at UC Irvine whose research focuses on evolutionary game theory and its implications for AI safety. He has been involved in the Effective Altruism community since his undergraduate studies at the London School of Economics (2018) and has been a central figure in building the AI safety community at UC Irvine. He organized AI Alignment Irvine (AIAI), facilitating weekly alignment reading groups and AI safety dinners, and helped recruit a core group of PhD students engaged in AI alignment research. He also facilitated the Arete Fellowship at UCI, an 8-week introduction to Effective Altruism, and co-organized EA at UC Irvine. He has received grants from EA Funds (Long-Term Future Fund) to support his organizing work, including a stipend for running AIAI and funding for AI safety dinners. He is listed as a member of the AI Safety Community Researchers group at the Future of Life Institute.

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Joy Livingwell

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joylivingwell.com

Lead Researcher at Saving Humanity from Homo Sapiens, investigating how humanity can achieve very-long-term sustainability and a flourishing long-term future while avoiding global catastrophic and existential risks.

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Matthias Georg Mayer

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Matthias Georg Mayer is an independent researcher and mathematician working in AI safety, with a focus on agent foundations and providing formal guarantees for the safety of AI systems. He was a 2025 Alumni Fellow at Principles of Intelligence (PIBBSS), where he worked on theoretical alignment research. His earlier work centered on structural independence, a generalization of d-separation concepts applied to structural causal models (also known as Finite Factored Sets), and he co-authored the paper "Factored space models: Towards causality between levels of abstraction" (arXiv 2412.02579, December 2024) alongside Scott Garrabrant, Magdalena Wache, Leon Lang, Sam Eisenstat, and Holger Dell. More recently his interests have shifted toward the Learning Theoretic Agenda developed by Vanessa Kosoy, with particular focus on Infrabayesian-Physicalism as a means to address embedded agency. He has received funding from the Long-Term Future Fund (LTFF) to research framing computational systems in ways that surface meaningful concepts. He participates in the AI alignment community through the Alignment Forum and LessWrong under the handle matthias-g-mayer.

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Remmelt Ellen

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Remmelt Ellen is a Dutch AI safety organizer and researcher based in Amsterdam, Netherlands. He co-founded Effective Altruism Netherlands in 2017 and co-launched AI Safety Camp (AISC) in 2018, serving as an organizer for nearly every edition of the program. At AISC he oversees program design and currently coordinates Stop/Pause AI projects, working to onboard initiatives that advocate for halting or pausing unsafe AI development. His research focuses on AGI safety impossibility arguments, including formal reasoning on why advanced AI systems cannot be reliably controlled, developed in collaboration with a former Pentagon engineer. He authored the book "Artificial Bodies: How Machines Replace People" (2024), a critical examination of how Big Tech corporations create exploitative systems that consume human resources and disrupt ecological balance. He has received grants from the Long-Term Future Fund to support AI Safety Camp's virtual and in-person programs.

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Chijioke U.

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Mariana Lozano

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Najoung Kim

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najoung.kim

Assistant Professor in the Department of Linguistics and affiliate faculty in the Department of Computer Science at Boston University, where she leads research at the intersection of computational semantics, pragmatics, and generalization in human and machine learners. She received her PhD in Cognitive Science from Johns Hopkins University, and her work has been supported by funders including the NSF, Google, and Open Philanthropy.

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Alpha Habib Bangura MSc., CPLP, BA (Hons)

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Mandla Lionel Isaacs

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Eyas Ayesh

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Community Lead for the AI Safety Initiative at Georgia Tech and Psychology Ph.D. student who manages AISI’s meetings and socials and uses neuroscientific methods to study AI systems and brain computation.

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Aditya Arpitha Prasad

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adityaarpitha.substack.com

Alignment researcher and organiser working on AI safety field-building in India, leading the Groundless Alignment Residency 2025 for Autostructures fellows to continue the Live Theory agenda and run research retreats.

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James L. Moore III

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Stephen J. Hadley

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belfercenter.org

Stephen J. Hadley is a principal of Rice, Hadley, Gates & Manuel LLC, where he advises senior executives of major corporations on political and national security challenges in major emerging markets. He previously served as U.S. National Security Advisor from 2005 to 2009, after four years as Deputy National Security Advisor, and earlier was Assistant Secretary of Defense for International Security Policy.

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Philip Dawson

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