Role Overview
Benchling is hiring a mid-level Machine Learning/AI Scientist. This is a full-time role in New York. posted last week. Full responsibilities, required qualifications, and the apply link are listed in the description below.
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Job Description
We are rebuilding biotech for the AI era.
Getting a molecule from discovery to patients, or a crop from lab to field, involves thousands of slow, manual, disconnected steps. AI has the potential to change this, compressing decades of R&D work into years. But that only happens when clean, structured scientific data and AI are built into how science gets done.
Benchling is the AI platform for biotech R&D. Scientists use Benchling to design experiments, capture structured data, and run AI agents and models directly in their workflows. Over 200,000 scientists around the world trust Benchling to power their most important work, from academic labs to Sanofi, Moderna, and more than half of the world's top 50 biopharma.
We’re building an AI scientist for our customers. AI fluency is the foundation we build on; it's core to how we work, and we're committed to helping every new hire integrate it into their day-to-day. As part of our interview process, you'll complete a brief AI-focused exercise or discussion so we can understand how you think about and use AI to drive impact in your role.
Feel free to reference any tools, platforms, or workflows you use today. Biotechnology is rewriting life as we know it, from the medicines we take, to the crops we grow, the materials we wear, and the household goods that we rely on every day. The world's most innovative biotech companies use Benchling's R&D Cloud to power the development of breakthrough products and accelerate time to milestone and market.
Come help us bring modern software to modern science. Benchling is building Intelligence Engineering & Enablement, a small autonomous team within our Security & IT organization.
We own three things: internal AI tooling, adoption, and AI-assisted workflows across the company; cross-functional and company-wide agentic AI applications that span departmental boundaries; and the source-of-truth datasets, pipelines, and analytics that all of the above depend on, in partnership with our Data, Analytics & Systems team. We span the bridge between departmental AI experimentation and enterprise-grade agentic systems in production — rapidly prototyping new solutions, and graduating proven prototypes into hardened, well-governed systems with full SDLC rigor. We set the patterns, standards, and shared infrastructure that let departmental teams and AI power users across the company build their own solutions, and we take on the agentic systems that no single team owns.
It's early days for enterprise agentic AI at Benchling, and we'll be moving fast — iterating on prototypes, learning from internal customers, and changing direction as the field matures. As the founding engineer for this team, you'll own the technical direction, architecture, and delivery of our agentic AI portfolio. You'll be a player-coach — hands-on most of the time, leading by doing — and partner closely with our AI Product Manager on prioritization and our Data, Analytics & Systems team peers on the data foundations that agentic systems depend on.
This is a senior individual contributor role on a flat team: you'll lead the engineering team in ideation, planning, and delivery and you'll drive technical hiring, while people management responsibilities sit with the hiring manager. Check out our engineering blog for examples of past work across Benchling. Define the foundational architecture for enterprise agentic AI at Benchling — orchestration, agent frameworks, tool integrations (including MCP), memory and state management, evaluation, and observability. buy decisions across the stack with documented rationale.
Build and ship the early portfolio yourself: Stand up the CI/CD, testing, evaluation, and deployment infrastructure for agentic systems — leveraging existing patterns from Benchling's Build organization wherever possible. Graduate prototypes from the AI Product Manager's discovery cycles into hardened, production-grade systems and own production support under a "you build it, you run it" model. Build for multi-tenant isolation, secrets management, audit logging, payload encryption, role-based access controls, and human-in-the-loop controls calibrated to risk.
Partner with Security Engineering on threat modeling for agentic architectures — prompt injection, tool misuse, data exfiltration vectors. Coach power users and departmental teams on production patterns, develop the criteria that decide which prototypes graduate into enterprise-grade systems, and build the internal-facing developer experience — templates, SDKs, sandboxes — that lets builders outside this team ship safely. Work closely with our Data, Analytics & Systems team peers on the source-of-truth datasets and pipelines that agentic systems depend on.
Engage with department leaders on the workflows we're transforming, and with Benchling's platform and infrastructure teams to leverage existing capabil
Frequently Asked Questions
How do I apply for the Machine Learning/AI Scientist position at Benchling?
Use the Apply button above to submit your application directly to Benchling. Most applications take less than 5 minutes if your resume and contact details are ready, and you'll be routed to the employer's official application system to finish.
Where is the Machine Learning/AI Scientist position at Benchling located?
This position is based in New York. Benchling has not indicated remote or hybrid options for this role, so candidates should plan for on-site work.
What does a Machine Learning/AI Scientist at Benchling earn?
Benchling has not disclosed a salary range in this posting. Many employers share specifics later in the interview process; you can also ask during a recruiter screen if compensation transparency is important to you.
When was the Machine Learning/AI Scientist role at Benchling posted?
This role was posted on May 27, 2026 (12 days ago). It's still listed as actively hiring; we re-confirm openings against the source system multiple times per day and remove closed roles.
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