AI Data Scientist

Dolfin AI

Greater London

On-site

GBP 90,000 - 130,000

Full time

13 days ago
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Benefits offered by this job

Meaningful equity
In-person role in London
Real production AI systems experience

Job summary

Dolfin AI is seeking an AI Data Scientist to own the intelligence layer powering our agentic financial ops API. You will read financial documents, determine relevance, and decide whether to act or escalate, across AR, AP, expenses and more. This is a hands-on role in production with real SMBs.

You will build evaluation harnesses, calibration methods, and corrections flywheels, collaborating with founders to set accuracy goals. Southbank, London, full-time, in-person.

Qualifications

  • 3+ years shipping applied ML or AI systems into production.
  • Hands-on with LLMs in production: structured output, tool calling, retrieval, prompt and pipeline iteration against measured outcomes.
  • Strong production Python. You ship code, not notebooks.
  • Experience in a domain where being wrong is expensive (fintech/compliance).
  • Genuinely autonomous: take an ambiguous accuracy problem and ship the improvement.

Responsibilities

  • Own extraction and matching across AR, AP, expenses and more (invoices, POs, remittances, bills, receipts, card transactions).
  • Own confidence scoring and threshold calibration; balance correctness with usability.
  • Solve cold start for new platforms with limited labelled data.
  • Build evaluation infrastructure: gold sets, regression suites, per-platform accuracy tracking.
  • Build the correction flywheel: fixes become measurable accuracy gains.
  • Turn written rules into executable, explainable logic.
  • Partner with founders on where the accuracy bar sits and what we ship next.

Skills

Applied ML production
Python production code
LLMs in production
Evaluation harnesses
Autonomy
Problem solving

Tools

Python
APIs

Job description

We're building the agentic financial ops API for SMB platforms. Fintechs, vertical SaaS, banks, and PSPs use Dolfin to embed AI-native financial ops agents (invoicing, bills, expenses etc) directly into their products. White-label, API-first, production-ready.

Our agents are live in production with real SMBs. We're live and moving fast: signed platform clients including a unicorn, pipeline in the $M's, and part of Balderton's latest 'Launched' cohort.

We're looking for an AI Data Scientist to own the intelligence layer our agents run on. Every Dolfin agent does the same thing underneath: read a financial document, work out what it relates to, decide whether to act or ask a human.

Your job is to make that decision right, at scale, across every platform we're live with.

What you'll be doing
  • Own extraction and matching across AR, AP, expenses and more. Invoices, purchase orders, remittances, bill, receipts, card transactions. Unstructured PDFs, photos, and structured e-invoicing feeds.
  • Own confidence scoring and threshold calibration. Auto-accept vs elevate is the highest-leverage decision in the product. Too loose and we post bad entries to a real ledger. Too tight and the platform's customers do the work themselves.
  • Solve cold start. New platforms go live in days with almost no labelled data for their formats, chart of accounts, or policies. Making that work without a bespoke build per client is an open problem, and it's yours.
  • Build the evaluation infrastructure. Gold sets, regression suites, per-platform accuracy tracking. We find out when something regresses before a client does.
  • Build the correction flywheel. Every fix an SMB makes inside a partner's product is a label. Turn that into measurable accuracy gains.
  • Turn written rules into executable logic. Expense policies and approval rules, interpreted, applied, and explainable.
  • Partner directly with the founders on where the accuracy bar sits and what we ship next.
How we build
  • Production-first. If it isn't live and reliable, it isn't done.
  • Measured, not intuited. If you can't show the number moved, it didn't.
  • Correctness is non-negotiable. This is someone's ledger. Precision and auditability come first.
  • Pragmatic, not dogmatic. Simple approaches where they work, sophistication only where it earns its keep.
  • AI-native. LLMs as infrastructure, not features.
  • Built to embed. Multi-tenant from the ground up. Nothing we build should overfit to one client.
  • Small team, high trust. Judgement over process, every time.
What you'll need
  • 3+ years shipping applied ML or AI systems into production, not research or analytics.
  • Hands-on with LLMs in production: structured output, tool calling, retrieval, prompt and pipeline iteration against measured outcomes.
  • Strong production Python. You ship code, not notebooks.
  • You've built evaluation harnesses and treat accuracy as an engineering problem rather than a judgement call.
  • Experience in a domain where being wrong is expensive. Fintech, compliance, legal, insurance, healthcare.
  • Genuinely autonomous: take an ambiguous accuracy problem, make the call, ship the improvement.
  • Comfortable operating without structure, and creating it.

Bonus: document AI (OCR, layout parsing, entity extraction), AP/AR or accounting systems knowledge, e-invoicing, or time at an API-led fintech or infrastructure company.

Who this is for

People who want to own the number rather than present it. Builders who've put AI into production where it had to be right. People who make the call rather than wait to be told.

Not for: research or PhD-track scientists who want to train models and publish. Analytics data scientists expecting a warehouse, dashboards, and A/B traffic. Fully remote candidates. Anyone who needs tightly scoped tickets.

Why us
  • Genuine early-team role with meaningful equity.
  • Real production AI systems with real money on the other side, not experiments.
  • Deep ownership of the layer the entire product depends on, and a hand in setting the accuracy bar from day one.

Southbank, London, in-person. Full-time. Let's go!

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