Forward Deployed Engineer

Posted Yesterday
Be an Early Applicant
San Francisco, CA, USA
In-Office
Mid level
Artificial Intelligence • Machine Learning • Software • Analytics
The Role
Embed with high-stakes customers to deliver data infrastructure, integrations, and robust AI systems for real-world physical domains. Ship scalable, production-ready solutions, adapt quickly to customer constraints, surface new problems, and extend the core platform while traveling and working on-site.
Summary Generated by Built In

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.

 
About the deployment team

A model only matters if it changes what happens in the real world. Our deployment teams embed directly with the institutions that make the highest-stakes decisions about physical systems. They turn our models into results those institutions can depend on and carry everything we learn in the field back into the product. Deployment works in small, cross-functional pods and partners closely with Product Engineering, which builds the platform the pods deploy.

 
Forward Deployed Engineer

We look for engineers who are excited to tackle unsolved problems. They thrive in high stakes situations, sitting next to the people in the field who depend on the answers. As a Forward Deployed Engineer, you embed with the institutions using our models to make consequential decisions about the physical world. Your mission is to make sure we build the right solution for a customer's mission: delivering the data infrastructure, integrations, and AI systems that work in practice, not just in theory — and expanding our core product to solve new problems as you discover them.

Willingness to travel to and spend extended time on-site with customers is required.

 

Responsibilities

  • Embed with strategic customers to understand their mission and ensure we build the solution that actually solves it

  • Deliver scalable data infrastructure and integrations inside real customer environments

  • Design and ship AI systems that hold up under real-world conditions, data, and constraints

  • Surface new problems as you find them in the field, and extend our core platform to handle them

  • Work hands-on across the stack — technical, resourceful, and close to the user

 

What we're looking for

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

  • Strong, versatile engineering skills and the resourcefulness to solve unfamiliar problems with whatever it takes

  • Experience building and shipping real systems in production — data infrastructure, integrations, applications

  • Comfort working directly with customers and adapting fast to their environments and constraints

  • Willingness to travel and embed on-site wherever the mission needs you

  • A bias toward real-world impact over elegance: solutions that work for the user, under pressure

Skills Required

  • Willingness to travel to and spend extended time on-site with customers
  • Strong, versatile engineering skills and resourcefulness to solve unfamiliar problems
  • Experience building and shipping real systems in production (data infrastructure, integrations, applications)
  • Comfort working directly with customers and adapting fast to their environments and constraints
  • Bias toward real-world impact over elegance; deliver solutions that work under pressure
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The Company
Year Founded: 2024

What We Do

Causal Labs is building a Large Physics foundation Model (LPM) to achieve general causal intelligence, enabling AI to predict the future and identify optimal actions by learning causality through physics and weather.

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