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Substrate Bio

Substrate Bio

Autonomous AI-driven wet labs for biological experimentation

AI Engineering Lead

Full-Time
No salary listed
Senior
London, UK
Hybrid

In-person time at the Regents Park Lab is expected, particularly during the early phases.

About the job

Requirements
  • Five or more years of professional software engineering experience.
  • Direct experience putting large language models, foundation models, or agentic systems into production at scale.
  • Working comfort with the LLM harness layer, including token economics, retrieval, evaluation, structured output, and large-scale data processing through models.
  • Strong working comfort with Python.
  • A track record of designing systems that other engineers built on top of.
  • Some history with biology, biotechnology, or scientific literature, gained through formal background, a science-adjacent role, or substantive independent engagement with the field.
Responsibilities
  • Help lock the architecture for AI Scientist and the harness layer underneath it.
  • Ship an end-to-end thin slice covering literature ingestion, gap identification, and an agentic loop that surfaces candidate experiments.
  • Help establish engineering culture for the intelligence team, including code review, evaluation, deployment, and observability.
  • Influence the languages, frameworks, and tooling used by the intelligence team.
  • Stand up data-capture infrastructure for AI Assays, define the schema, and establish the feedback path from operational software.
  • Bring AI Scientist into production and connect its outputs to allocation of reserved research and development capacity across verticals.
  • Help shape the technical roadmap for the intelligence team as the AI engineer and data engineer join.
  • Ship the first version of AI Assays and connect protocol-optimization suggestions back into the assay design loop.
  • Help scope the third intelligence product using data produced by the lab at scale.
  • Coordinate the intelligence team's work across product surfaces as the team develops.
Desired Qualifications
  • Direct experience in or near biology, biotechnology, scientific computing, or a research environment involving experimental data and academic literature.
  • Experience in an early-stage founding-engineer role at a venture-backed company.
  • A background working with laboratory information management systems, electronic laboratory notebooks, or scientific data infrastructure systems.

About the company

Substrate Bio operates AI-native data-production infrastructure for biology, connecting computational models with real-world experimentation. The company runs a network of autonomous, robotics-powered wet labs, starting in London with a second planned for San Francisco, running standardized experiments with full provenance, metadata, and quality control. Researchers access the labs via API, submitting experiment parameters and receiving structured data and metadata, while foundation models help design assay selections, cell systems, and gene panels. What sets Substrate Bio apart is its closed feedback loop, where better data improves its models and better models design better experiments. The goal is to make biological experimentation as programmable and scalable as computation itself.

Company Size

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Company Stage

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Total Funding

N/A

Headquarters

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Founded

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Simplify Jobs

Simplify's Take

What believers are saying

  • Ashby jobs on June 3, 2026 showed ten open roles, signaling real buildout.
  • Substrate Bio hired for functional genomics, molecular characterization, and protein production in 2026.
  • The company targets foundation-model labs and pharma, two large, hungry buyer groups.

What critics are saying

  • No disclosed customer revenue exists before mid-to-late 2027, extending burn risk.
  • Execution depends on hiring senior scientists across London and San Francisco in 2026.
  • A failed automation rollout in King’s Cross would kill the autonomous-lab thesis.

What makes Substrate Bio unique

  • Substrate Bio launched AI-native wet labs in London, incorporating April 30, 2026.
  • Its King’s Cross node targets autonomous experiments with provenance, metadata, and re-runs.
  • Job posts describe a full stack from protein production to sequencing readouts.

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Benefits

Health Insurance

Paid Holidays

Hybrid Work Options

Professional Development Budget

Company Equity