Synced from Ashby · Jun 25

Applied Scientist

Prior LabsNew YorkPosted Jun 25, 2026
Applied ScientistOn-siteMid
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Jun 25
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Ashby
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Job description

Who we are

Foundation models transformed text and images. Structured data - the largest and most consequential data format in the world - stayed untouched, until now. What LLMs did for language, we're doing for tables.

We pioneered tabular foundation models: TabPFN v2 was a Nature cover story, has passed 3.5M+ downloads and 7,500+ GitHub stars, and runs in production from detecting lung disease with Oxford Cancer Analytics to preventing train failures with Hitachi. The hardest problems - millions of rows, real-time inference, entirely new modalities - are still open, and no one else is working on them at this level.

We're a small, highly selective team of 40+ with backgrounds from Google, DeepMind, Meta, Apple, Amazon, Jane Street, and CERN, led by Frank Hutter, Noah Hollmann, and Sauraj Gambhir, and advised by Bernhard Schölkopf and Turing Award winner Yann LeCun.

In July 2026, less than 18 months after our €9M pre-seed, we joined SAP as an independent frontier AI lab - same team, mission, and open-weights models, now backed by more than €1 billion over four years.

About The Role

You'll join our data science team working with an entirely new class of AI models. As a Data Scientist at Prior Labs, you'll be the critical link between our foundation models and real-world applications — experimenting hands-on with our tabular foundation models (including TabPFN) to uncover new applications, working directly with customers to show how native tabular AI solves problems traditional methods can't, and translating what you learn back into our product roadmap.

How You'll Drive Impact:

Applied Data Science & Experimentation: Identify high-impact use cases for TFMs and build proof-of-concepts that showcase their advantages over traditional ML. Develop best-practice workflows using capabilities like in-context learning (ICL) and benchmark rigorously against existing approaches.

Customer Success: Work directly with users to understand their challenges and demonstrate TFM value through technical demos tied to real business objectives. Guide onboarding to deliver quick wins and translate user feedback into technical insights for our product team.

Community & Education: Design and deliver workshops, tutorials, and content that explains the tabular foundation model paradigm — how it differs from LLMs and traditional ML, and why it matters. Engage the data science community through Kaggle, GitHub, and public-facing work.

What We're Looking For:

  • PhD or Master's in a quantitative field, plus 3+ years of hands on experience with ML/AI in industry, competitive ML, or open-source.

  • Strong proficiency in Python and the modern data science ecosystem, with hands-on experience training and deploying deep learning models in PyTorch, including modern deep learning - architectures (especially transformers)

  • Ability to translate complex technical concepts into tangible value for both technical and non-technical audiences

  • Strong customer-facing skills, with the ability to independently drive technical conversations and engagements across pre-sales, POCs, and post-sales.

  • Strong problem-solving skills, with the ability to quickly understand unfamiliar customer problems and translate them into practical data science/ML solutions.

  • Broad ML knowledge and the ability to quickly adapt to new domains and problems.

  • Strong communication and collaboration skills.

Nice to Have:

  • Master’s or PhD in a quantitative field.

  • Kaggle Grandmaster, Master, or Expert status

  • Experience in technical consulting, solutions engineering or forward-deployed roles

  • Experience with PyTorch, transformers, tabular data, or other modern ML approaches.

  • Contributions to open-source projects, technical writing, talks, or workshops.

US Benefits:

  • SAP RSUs (Publicly traded, liquid once vested)

  • 20 days paid vacation

  • Health, dental and vision 100% employer-paid

  • Fitness and transportation allowances

  • 401k matching (2%, one-year cliff)

  • Opportunity to publish your work

  • Team offsites at least once a year

  • Visa and relocation support (if required)

Life at Prior Labs

You'll work alongside researchers and builders who hold themselves to a very high bar - in the quality of their work and in how they work with each other. We move fast and still take the time to do things right.

Our teams are based in Berlin, Freiburg, and New York - when you're working on something as hard as TabPFN, being in the same room matters. But great people come from everywhere, and in exceptional cases we're open to remote, which usually means frequent travel to one of our offices. Wherever you're based, the whole company comes together regularly for offsites to build and celebrate together.

Our Commitments

The best products and teams are built by people with a wide range of perspectives and backgrounds. We welcome applications from all identities and walks of life - especially if you've ever felt discouraged by "not checking every box" - and provide equal opportunities regardless of gender, sexual orientation, origin, disability, or any other trait that makes you who you are.

We care about how your data is handled - see our Recruiting Data Privacy page

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What applying to Prior Labs usually looks like

Based on publicly available information, candidates applying through ashby can generally expect a streamlined online application process, often starting with a form that captures resume details, links, and sometimes short screening questions. Ashby-based processes commonly include an initial recruiter or hiring team review, followed by one or more stages that may involve technical or role-specific assessments, take-home exercises, and interviews with team members or hiring managers. For roles at Prior Labs, applicants might encounter stages tailored to technical depth, such as coding or research discussions, alongside conversations focused on collaboration and communication skills. Response times vary and are not guaranteed, as they depend on role volume and internal scheduling. Candidates should typically prepare materials in advance, follow up politely if needed, and expect updates delivered primarily through the ashby platform or email.

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