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第一性原理研究学者

FirstPrinciples Research Fellow

AI市场运营限定地区(需当地身份)
公司FirstPrinciples
薪资未公开
工作地点Canada, United States
地域资格限定地区(需当地身份)
时区要求日间重叠约 9 小时,基本正常作息
用工类型Contractor
发布时间今天
数据来源Himalayas
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注意地域限制:该职位明确限定在 Canada、United States 招聘。如果你是位于中国大陆的求职者,通常需要当地工作身份才能投递,或需与雇主确认是否接受独立合同(Contractor)形式合作。

概述:
FirstPrinciples 是一家非营利组织,致力于构建一个自主的 AI 物理学家,以理解现实的本质:宇宙的底层结构、运行原理和基本规律。我们正在开发一个智能系统,能够探索理论框架,跨学科推理,并生成新的见解,以解决物理学中最深奥的未解问题。通过结合 AI、符号推理和自主研究能力,我们正在打造一个超越分析现有知识的平台,积极为物理研究做出贡献。我们的目标是加速人类数百年来一直着迷的问题的进展。
我们是一家全球性的非营利组织,拥有加拿大基金会和美国 501(c)(3) 机构。
作为这一努力的一部分,我们正在启动一个针对高级 AI 和物理研究人员的研究学者计划。学者将直接与 FirstPrinciples 研究和工程团队合作,设计、测试并实现最先进的(SOTA)方法和应用,这些将被集成到核心 AI 物理学家系统中。这不是一个仅发表论文的学者计划,你的工作将直接进入生产环境,帮助塑造科学研究的方式。
你将负责什么
作为研究学者,你将负责一个明确的研究方向,该方向将直接提升 AI 物理学家对物理进行推理的能力。
核心目标:

  • 提升 Theo 在 2026 年生成科学上合理、高质量输出的能力;
  • 引入能显著提升系统性能的新思想、方法和思路;
  • 在一个或多个特定研究领域中具备深厚的学科专业知识(博士及以上水平)。

研究领域与职责
基础模型研究:

  • 研究、设计并测试结合学术文献、NLP、符号推理和结构化科学流程的新模型架构。
  • 原型设计并构建物理概念、数学对象和逻辑结构的嵌入表示,使模型能够基于方程、抽象和科学约束进行推理,而不仅仅是表面文本。
  • 考察基于 transformer 的架构的替代方案,并提供具体的建议。
  • 设计并运行针对性的实验,评估新的架构想法,利用实证结果指导下一代模型架构的开发。
  • 开发强化学习循环,使模型能够运行内部和外部的实验。
查看英文原文

Overview:
FirstPrinciples is a non-profit organization building an autonomous AI Physicist to understand the nature of reality: the underlying structure, governing principles, and fundamental laws of our universe. We're developing an intelligent system that can explore theoretical frameworks, reason across disciplines, and generate novel insights to tackle the deepest unsolved problems in physics. By combining AI, symbolic reasoning, and autonomous research capabilities, we're developing a platform that goes beyond analyzing existing knowledge to actively contribute to physics research. Our goal is to accelerate progress on the questions that have captivated humanity for centuries.
We operate as a global nonprofit organization, with a Canadian foundation, a US-based 501(c)(3).
As part of this effort, we are launching a Research Fellowship Program for advanced AI and physics researchers. Fellows will work directly with the FirstPrinciples Research and Engineering teams to design, test, and implement state-of-the-art (SOTA) methods and applications that will be integrated into the core AI Physicist system. This is not a paper-only fellowship and your work will go straight into production, helping shape how scientific research is performed.
What You will DoAs a Research Fellow, you will own a well-scoped research direction that contributes directly to the AI Physicist's ability to reason about physics.
Core Objectives:

  • Improve Theo’s ability to produce scientifically sound, high-quality outputs in 2026;
  • Introduce new ideas, methods, and approaches that meaningfully shift system performance;
  • Bring deep domain expertise (PhD+ level) in one or more targeted research areas.

Research Areas & Responsibilities
Fundamental Model Research:

  • Research, design, and test novel model architectures that combine academic literature, NLP, symbolic reasoning, and structured scientific workflows.
  • Prototype and build embedding representations for physical concepts, mathematical objects, and logical structures, enabling models to reason over equations, abstractions, and scientific constraints rather than surface text alone.
  • Investigate alternatives to transformer-based architectures and deliver concrete recommendations.
  • Design and run targeted experiments to evaluate new architectural ideas, using empirical results to guide the development of next-generation model architectures.
  • Develop reinforcement learning loops that enable models to run internal and independent thought experiment.

Multimodal Data & Benchmarking:

  • Design and automate scalable data ingestion pipelines that aggregate scientific literature, metadata, equations, and experimental data.
  • Create custom benchmarks to measure physical understanding, mathematical reasoning, and failure modes in scientific reasoning and abstraction.
  • Refine and release curated datasets and baselines once internal validation is complete.

Training, Testing & Safety:

  • Run and track model training jobs while managing compute usage and budget constraints.
  • Design sandbox environments for controlled autonomous exploration.
  • Build evaluation frameworks using visual and statistical tools to identify strengths and blind spots.
  • Implement tests and guardrails that flag low-quality or unsafe outputs.
  • Maintain internal issue tracking with clear failure modes and fixes.

Collaboration & Technical Guidance:

  • Work closely with engineers to ensure research is feasible and production-ready.
  • Communicate technical trade-offs clearly to non-technical stakeholders.
  • Present regular research updates tied to defined milestones.

Who This Fellowship Is ForWe are looking for researchers who:

  • Can operate independently and own a problem end-to-end.
  • Are motivated by ambitious, long-horizon goals.
  • Have strong builder instincts, not just theory.
  • Value rigor, clarity, and intellectual honesty.
  • Are comfortable engaging with exploratory, incomplete results.

Typical profiles include:

  • PhD or postdoctoral researchers in Computer Science, Machine Learning, Theoretical Physics, or a closely related field.
  • Track record of research in either:
  • model architectures, representation learning, or reasoning systems (CS/ML path); or
  • mathematical, physical, or formal reasoning applied to fundamental problems (physics path).
  • Demonstrated ability to translate abstract theory into testable computational systems.
  • Comfortable working across disciplinary boundaries.

Program Structure

  • 6-12 month engagement with full-time or equivalent commitment
  • Fully remote
  • Fellows participate in projects and are expected to produce outputs (code, models, and other deliverables)
  • Fixed stipend for the full term

How to Express Interest:If this resonates, we welcome an expression of interest, including:

  • Resume;
  • Description of your research background;
  • Primary areas of expertise; and
  • Relevant recent work.

Join us at FirstPrinciples and be a part of a transformative journey where science drives progress and unlocks the potential of humanity.
Originally posted on Himalayas

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