Member of Technical Staff — Research, Physics

causal· Research
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📍 San FranciscoFullTime

About this role

Our mission is general causal intelligence; AI that is capable of (1) predicting the future and (2) identifying the actions to alter it.

To achieve this breakthrough, we are building a Large Physics foundation Model (LPM) because physical systems, unlike text or images, are governed by verifiable cause and effect. We believe that scaling on physics will enable an understanding of causality required to predict and control physical systems, starting with weather.

Our founding team has built and deployed AI against the physical world in robotics, drug discovery, and particle physics at institutions like DeepMind, Waymo, Cruise, Insitro, Nabla Bio, and CERN.

We look for domain experts who are excited to tackle unsolved problems. Our thesis is that scaling on physics yields a model capable of understanding the causal structure to predict and alter the future. Your mission is to ensure the model evolves towards this thesis: grounded in physical law, evaluated against it, and ready to generalize across domains.

Responsibilities

  • Bring physical principles to bear on the model — assessing consistency with conservation laws and physical constraints, and where physics-informed inductive biases help or hinder

  • Develop evaluations that test whether the model's behavior is physically coherent, not just statistically accurate

  • Advise on the physics of the systems we model, from fluid dynamics to thermodynamics, and their numerical treatment

  • Investigate where the LPM generalizes across physical domains and where it breaks down

  • Partner with model, evaluation, and interpretability teams to connect physical understanding to research direction

What we're looking for

We value a relentless approach to problem-solving, rapid execution, and the ability to quickly learn in unfamiliar domains.

  • Deep expertise in physics — fluid dynamics, thermodynamics, computational physics, or a closely related field (typically a PhD or equivalent research experience)

  • Familiarity with numerical simulation of physical systems (e.g. CFD) and its trade-offs

  • Interest in where machine learning and physical modeling meet

  • Ability to collaborate closely with ML researchers and translate physical principles into technical requirements

  • A rigorous, evidence-driven approach to evaluating model quality

Frequently Asked Questions

Is the salary disclosed for the Member of Technical Staff — Research, Physics position at causal?
The salary for this Member of Technical Staff — Research, Physics role at causal is not publicly listed. Click "Apply Now" to learn more about the compensation package on their official careers page.
Where is the Member of Technical Staff — Research, Physics position at causal located?
This Member of Technical Staff — Research, Physics role at causal is based in San Francisco. The position is listed as on-site or hybrid. Check the full job description or apply directly to confirm the work arrangement.
Is the Member of Technical Staff — Research, Physics role at causal full-time or part-time?
This is listed as a FullTime position. It is posted as a Member of Technical Staff — Research, Physics role in the Research department at causal.
Which team or department does the Member of Technical Staff — Research, Physics at causal belong to?
This Member of Technical Staff — Research, Physics position is part of the Research department at causal. See the full job description for more information about the team structure and responsibilities.
How do I apply for the Member of Technical Staff — Research, Physics position at causal?
Click the "Apply Now" button on this page. You will be redirected to causal's official application portal hosted on ashby where you can submit your application directly.
When was the Member of Technical Staff — Research, Physics job at causal posted?
This Member of Technical Staff — Research, Physics position at causal was posted on Jul 21, 2026. Apply as soon as possible — early applications are often reviewed first.
Member of Technical Staff — Research, Physics
causal
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