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Open nowPosted 95 days ago

ML Research Engineer

White Circle22 open roles

Where
Paris
Work mode
Hybrid
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Your applicationOpen nowML Research EngineerWhite Circle · Paris
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The clock on this job

Early applications get read.

7.9% of postings close within 7 days. Measured by our own scanner across the market. White Circle postings stay open a median of 6 days.

Share of postings closed within
  1. 1.6%1 day
  2. 3.6%3 days
  3. 7.9%7 days
  4. 14.9%14 days
  5. 34.2%30 days
This job: posted 95 days ago

White Circle median: 6 days open

The posting

TL;DR: We are looking for several ML Engineers to train, post-train, and evaluate the LLMs at the core of our platform. This is hands-on modern model training work: large-scale data pipelines, SFT/RLHF/DPO-style alignment, reward models, distributed multi-GPU training, and evaluation.

About us

White Circle https://whitecircle.ai/ is an AI Safety company building the safety, reliability, and optimization layer for AI systems. At the core of our platform are policies – simple natural-language rules that define what an AI model should and shouldn’t do. We automatically test, enforce, and continuously improve these policies at scale.

- We’ve recently raised our Series A funding round, taking our total funding to $70M. Our investors include top funds, founders, and senior leaders at OpenAI, Anthropic, HuggingFace, Mistral, DeepMind, Datadog, Sentry, and others

- We process over 100M+ API calls every month

- We fine-tune and train our own LLMs so they run faster and cheaper than any open or proprietary model

We’re a small, highly focused team. If you want to work deeply on hard problems, see your work ship to production quickly, and influence how AI safety is actually built – you’re the one we need.

What you’ll do

- Turn petabytes of unstructured text into a structured, explorable view (topics, clusters, segments, trends, anomalies): iterate from “unknown unknowns” to stable definitions we can track.

- Build scalable representation pipelines: sampling strategies, preprocessing/normalization, embeddings at scale, indexing, and retrieval to make the corpus searchable and analyzable.

- Use LLMs pragmatically: labeling/classification, weak supervision, data enrichment, summarization, and automated diagnostics of inbound volumes (with cost/quality controls).

- Deliver insights that change decisions: translate findings into product and operational actions (what data we have, what’s missing, where quality breaks, what to prioritize next).

- Ship self-serve analytics: datasets, data models, and lightweight tools/dashboards so the team can explore and answer questions without ad-hoc requests.

- Partner closely with engineering/research: align pipelines with production constraints (latency/cost/privacy), and integrate outputs into workflows.

You'll fit right in if you

- Have strong Python + SQL with an engineering mindset: you can build reliable pipelines, not just notebooks.

- Have solid applied NLP/ML experience on real-world text: embeddings, clustering, topic modeling, semantic search, classification; you understand failure modes and how to debug them.

- Are comfortable at scale: distributed processing, large-scale storage-querying, and performance-cost tradeoffs.

- Know how to evaluate fuzzy problems: offline/online metrics, human-in-the-loop labelling, inter-annotator agreement, drift monitoring, and reproducibility.

- Have prior work with safety/moderation datasets, policy/rule systems, or high-volume logging/observability

A big plus

- A public builder footprint: open-source models, datasets, or training frameworks on HuggingFace/GitHub, benchmarks, papers (workshop or main conference), or technical posts with real usage

- Experience training models at a frontier or near-frontier lab, or leading open-source model releases with documented adoption

- Experience with RL methods for LLMs beyond standard RLHF: online RL, GRPO-style methods, or novel alignment approaches

- Experience with moderation, safety, or classification models at scale

- Multilingual model training experience

Compensation & benefits

- Competitive compensation, including equity

- Flexible time off

- Office in central London/Paris with flexible hybrid setup

- Relocation support if you’re moving to Paris, available after your probationary period

- Premium private health insurance

- Mental health support, including coverage for therapy when you need it

- Lunch and dinner covered when you work from the office

- Learning and development support for courses, conferences, and opportunities to grow your skills

- All the hardware, subscriptions, tools, and services you need

- Team off-sites twice a year: we’ve recently been to the Alps, Saint-Tropez, and Marbella

Process

1. Intro call with Talent Team

2. Test assignment

3. Technical interview with Head of Applied Research

4. Final conversation with CEO

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