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Jeremie Kalfon 👨‍💻🧬🤖🚀

@jkobject.com
731 followers 3.3K following 171 posts

Doing a Ph.D. AI in Bio. | Ex @WhiteLabGx @BroadInstitute @MIT | Built @PiPleteam | ML, Cancer, Genomics, Data Sci, Entrepreneur, FullStack Dev | All views are mine

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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 17/09/2026
The challenges ahead are enormous, but so is the potential. Ad astra! ⭐ 3/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 17/09/2026
As I discovered Somite, now Cellular Intelligence, I immediately saw a strong alignment with where we thought the field needed to go. I’m therefore very happy to share that I’ve joined Cellular Intelligence to help build better models of the cell and, ultimately, transform cell therapies. 2/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 17/09/2026
A year ago at ICML, I met with Dan and we discussed the future of virtual cell models, and in particular the gap between the promises of the field and the reality of generating the data needed to get there. 1/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 17/09/2026
However, I believe it is the first work on this topic. For similar and richer works I would also now point to the PULSAR work from Pang, Rosen et al. pmc.ncbi.nlm.nih.gov... 2/2
pmc.ncbi.nlm.nih.gov
PULSAR: a Foundation Model for Multi-scale and Multi-cellular Biology - PMC
Biology emerges from interactions across physical scales, where molecular interactions drive cellular states, which in turn orchestrate multicellular tissue functions that collectively define health and disease. However, current computational models ...
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 17/09/2026
Second Ph.D paper published ✅ : iopscience.iop.org/a... After presenting this work at the ICML workshop on Foundation models for Life Science, I am happy for its open access publication. It is a paper of big ideas supported by yet small evidences. 1/2
iopscience.iop.org
Towards foundation models that learn across biological scales - IOPscience
Towards foundation models that learn across biological scales, KALFON, Jérémie, Cantini, Laura, Peyre, Gabriel
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Reposted by Jeremie Kalfon 👨‍💻🧬🤖🚀
Gabriel Peyré @gabrielpeyre.bsky.social · 15/09/2026
Clarifications sur mon intervention à France Inter au sujet de l’IA en mathématiques www.gpeyre.com/blog/2026/09... Merci à @jkobject.com de m'avoir poussé à l'écrire.
gpeyre.com
IA pour les maths : clarifications - Homepage of Gabriel Peyré
Une clarification de mon intervention sur France Inter, en français et en anglais.
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 22/06/2026
Honestly, this is closer to a small personal AI lab than anything else. It is addictive to use. 3/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 22/06/2026
- Hermes WebUI running over Tailscale with 4 Hermes agents: main, CTO, builder, reviewer - Project-level Kanban boards in Hermes WebUI with a set of OMX-derived skills for orchestration - access to basically everything I have, literally 2/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 22/06/2026
My current AI stack: - Codex Pro Max - Base-spec Mac mini with SSH, Screen Sharing, and Continuity enabled, obviously - Hermes as the main agent runtime with OpenClaw, and OMX still around for comparisons / fallback 1/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 21/06/2026
www.jkobject.com/ide... (These ideas stem from existing tools, Twitter threads of other scientists, and discussions with Gabriel and others) 3/3
jkobject.com
The new way we’ll do science
Papers should become human-readable views over a graph of data, tools, results, and certificates.
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 21/06/2026
If prose becomes cheap, trust has to move below the prose. I think papers should become views over a graph of scientific objects: this data, this tool, this result, this certificate, this condition, this dependency. Keep the story. Expose the machinery. I wrote the longer version here: 2/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 21/06/2026
Science has a weird habit: we still treat the PDF as the atomic unit of trust. But a paper is not one thing. It is a bundle of datasets, tools, models, protocols, results, assumptions, proofs, bugs, caveats, and human story. AI makes this harder to ignore. 1/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/06/2026
It is mostly an attempt to translate biology from a random list of mechanisms 🤯 into a human-understandable mental picture. 🧠 Let me know what you think, what is missing, and how you would change things. Full map + notes here 👇 www.jkobject.com/blo... 2/2
jkobject.com
The Gene Regulation Landscape
A compact map of how cells decide which genes become proteins
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/06/2026
I made a map of gene regulation as one integrated control system, from DNA → RNA → protein. 🧬 It contains 38 mechanisms grouped into 7 layers. It has a few recurring principles, such as: 🔓 accessibility 🏷️ reversible marks ⏱️ and kinetic coupling. 1/2
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 22/05/2026
Thanks to Cécile Laurent & Lorette Noiret for the invite, and to Chloé-Agathe Azencott for opening the Omics session before me. (and thanks Paul Steinmetz, my conference pal 📸) 2/2
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 22/05/2026
This morning I had the chance to present my research at the Cancéropôle IDF "AI & Cancer" day. Talking single-cell foundation models to cancer researchers and clinicians was a great exercise! 😅 1/2
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 25/04/2026
Everything is open-source: weights, pre-training code, the full 350M-cell corpus, and all 42 ablation models and I just wrote a blog post about it: www.jkobject.com/pro... 3/3
jkobject.com
Introducing scPRINT-2 | Jérémie
A Next-Generation Cell Foundation Model
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 25/04/2026
scPRINT-2 is a cell foundation model trained on 350M cells from 16 organisms. It classifies cell types, denoises expression, predicts gene regulatory networks, and generates counterfactual profiles — all zero-shot. 75% accuracy on the OpenProblems live benchmark. scPRINT-1 was at 47%. 2/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 25/04/2026
We trained 42 models so we didn't have to guess. Before building scPRINT-2, we ran a systematic ablation study — one design choice changed at a time. The results shaped every architectural decision. Now it's out. 🧵 1/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 23/04/2026
Built two @openclaw skills: E2EE messaging across all major platforms via Matrix/Beeper, and cross-platform social scheduling. My online presence is now 100% interfaced through my agents.
clawhub.ai
Unbridled — ClawHub
Send and read messages on Facebook Messenger, WhatsApp, Instagram, LinkedIn, Twitter/X, Signal, Telegram, Discord and other networks through a Beeper account...
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 22/04/2026
also: scPRINT-2 codebase: github.com/cantinila... LaminDB codebase: github.com/laminlabs... 3/3
github.com
GitHub - cantinilab/scPRINT-2: 🏃🏃 Your next-gen single-cell Foundation Model
🏃🏃 Your next-gen single-cell Foundation Model. Contribute to cantinilab/scPRINT-2 development by creating an account on GitHub.
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 22/04/2026
When I start a computational biology project these days, I set up a git repo and a LaminDB instance. It lets me do a lot more, in a reasonable time, in a reproducible way. That's a rare combination in this field. I recently made a short blogpost about it: www.jkobject.com/blo... 2/3
jkobject.com
How I managed thousands of datasets to build the scPRINT family of scRNA-seq foundation models | Jérémie
Short stories about my professional experiences.
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 22/04/2026
In fall 2023, I met Alex in CZI's CellXGene Slack channel when we were both trying to figure out how to best manage metadata of thousands of scRNA-seq datasets. Alex for his work on LaminDB, and I for my work on scRNA-seq foundation models. 1/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 20/04/2026
🚨 2026 Lilly x Nucleate Grand Challenge: Aging Reimagined 🔬 $100K non-dilutive 🏛️ Pitch at Lilly HQ 🤝 Lilly's science + venture teams Focus: mobility, cognition, immune resilience, regenerative medicine — the frontiers of healthspan. 📅 May 15 👉 linktr.ee/lillygrand...
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/04/2026
The full dataset is open, including an interactive atlas you can explore right now online. We also released the data pipeline so you can reproduce or extend it. I just wrote a blog post about it: 📖 www.jkobject.com/pro... 3/3
jkobject.com
The scPRINT-2 Corpus | Jérémie
350 Million Cells, 16 Organisms: Building the Largest Single-Cell Training Dataset
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/04/2026
350 million cells. 16 eukaryotic organisms — from human to mouse to tomato plant. 25 TB of unique data. 337 cell types, 296 diseases, spanning almost every major tissue. Ontology-aligned gene names, cell types, tissues, and species, consistently across the entire corpus. 2/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/04/2026
The biggest bottleneck in building cell foundation models isn't the architecture. It's the data. For scPRINT-2 we assembled what is, to our knowledge, the largest pre-training corpus for any cell foundation model. www.biorxiv.org/cont... 🧵 1/3
biorxiv.org
scPRINT-2: Towards the next-generation of cell foundation models and benchmarks | bioRxiv
bioRxiv - the preprint server for biology, operated by openRxiv, a nonprofit organization dedicated to advancing scientific communication
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 13/04/2026
Instead of attending to every pair of positions, you make two lightweight passes — one along rows, one along columns. I Just wrote up a small blogpost about it: 📖 jkobject.com/criss-c... Would love to hear from anyone exploring efficient attention mechanisms 🙂 #Transformers #Attention 2/2
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 13/04/2026
Self-attention changed everything in deep learning. But it comes with a tax: O(n²) complexity. For long sequences, that's not just slow — it's a wall. There's a cleaner way to think about it, which I introduced in my recent preprint: scPRINT-2, it is called Criss-Cross Attention: 🧵 1/2
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 29/01/2026
We prefer some people to get cancer, MS, parkinson than to give a virus to people that will get the virus anyway. Many people might volunteer! Indeed, we give so much to associations against cancer, MS, and dementia, but when it comes time to do something about it, it seems no one wants to. 6/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 29/01/2026
← Nowadays, no regulatory agency, even less in Europe, would let you do that. 5/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 29/01/2026
You could recruit kids, give them the vaccine, and infect them with EBV directly, since you know that almost all of them will be at some point, then check if they get infected or not using sequencing (PCR tests, B-cell antigen sequencing), and accept this as the endpoint of the trial. 4/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 29/01/2026
Because you need to recruit tens of thousands of young kids, test them often for infection, and wait decades to see symptoms of other diseases appear in some of them. The statistics are terrible. But it could be cheap... 3/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 29/01/2026
From different cancers, skin diseases, dementia, parkinson and more. The reason why there is no vaccine yet in 2026 is very interesting. Basically, it is super expensive. But why is it so? 2/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 29/01/2026
Did you know that likely most cases of multiple sclerosis (MS) are driven by the EBV virus (herpes/mononucleosis disease)? >90% of us get infected in our teens, and some will go on to develop many diseases later in life because of it. 1/6
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Reposted by Jeremie Kalfon 👨‍💻🧬🤖🚀
Judith Abécassis @judithabk6.bsky.social · 27/01/2026
And then lucky to pursue through an atlas of cells of many types and species, with a focus on quality and diversity mattering more than quantity with @jkobject.com
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 17/12/2025
@cantinilab.bsky.social
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/12/2025
Paper: www.biorxiv.org/cont... • Code: github.com/cantinila... Curious: **what’s the one benchmark you wish every single-cell foundation model reported by default?** 6/6
biorxiv.org
scPRINT-2: Towards the next-generation of cell foundation models and benchmarks
Cell biology has been booming with foundation models trained on large single-cell RNA-seq databases, but benchmarks and capabilities remain unclear. We propose an additive benchmark across a gymnasium of tasks to discover which features improve performance. From these findings, we present scPRINT-2, a single-cell Foundation Model pre-trained across 350 million cells and 16 organisms. Our contributions in pre-training tasks, tokenization, and losses made scPRINT-2 state-of-the-art in expression denoising, cell embedding, and cell type prediction. Furthermore, with our cell-level architecture, scPRINT-2 becomes generative, as demonstrated by our expression imputation and counterfactual reasoning results. Finally, thanks to our pre-training database, we uncover generalization to unseen modalities and organisms. These studies, together with improved abilities in gene embeddings and gene network inference, place scPRINT-2 as a next-generation cell foundation model. ### Competing Interest Statement The authors have declared no competing interest.
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/12/2025
4. **Generalization:** evaluation on **unseen organisms, tasks, and modalities.** It is also a push to rethink some evaluation of scFM; **SOTA on many tasks**. 🥇 🏃 ⛷️ ⛹️‍♀️ 🎁 If you’re reading papers over the break, I hope this is useful. 5/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/12/2025
3. **Data + pipeline:** unified **scBaseCount + Tahoe-100M + CELLxGENE**, with consistent preprocessing + weighted random sampling ****(and other practical bits that usually stay hidden) → **350M cells, 16 species, ~300 tissues, ~500 cell types**. 🌍🫁🐭 4/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/12/2025
1. **Benchmark:** **42 components** of scFMs across a gymnasium of tasks; looking at dataset size, encoding, training, architectures, losses, etc. 📊 2. **Model:** **scPRINT-2** — *small but mighty* with **~20M active parameters**, built from the strongest ingredients we found. 🤖🧬 3/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/12/2025
After a few years building scFMs (scPRINT, Xpressor, scPRINT-2…), I wanted to do something more “complete” than just shipping a new model: understand what matters, train the best version we can, and stress-test generalization properly. So this work is a 4-in-1 release: 2/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/12/2025
🧑‍🎄🎄 Christmas Foundation Model Release: scPRINT-2 **One-liner:** a **20M-active-param** single-cell foundation model trained on **350M cells / 16 species / 300 tissues / 500 cell types**. 1/6
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 05/12/2025
Thanks to Future4Care, Timothé Cynober, Whitelab Genomics, and Scienta Lab for organizing the event, and to Matteo Marengo, Clara Brouaux, and Gabriel Michaux for helping me manage the round table. And thanks to my all-star panel: Yann Fleureau, Jeremy Besnard, Sofia Dahoune, and Steven Jerome
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 05/12/2025
It was a blast hosting our Nucleate Inside AI roundtable at the France Techbio 2025 event.
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 07/11/2025
Join us Friday the 4th at the 🇫🇷 France TechBio2025 event!! www.eventbrite.fr/e/... 3/3
eventbrite.fr
TechBio France 2025
Join TechBio France 2025 to shape the future of France's TechBio ecosystem, fostering innovation and collaboration in biotech and technology
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 07/11/2025
Without double-talk and with amazing panelists🧑‍🔬: - Yann Fleureau, CEO, Blossom Life Sci & Founder of Cardiologs - Steven Jerome, Director, Lead of Hit Discovery, Schrödinger - Jérémy Besnard, Advisor, InFocusTx & Co-founder of Exsciencia - Sofia Dahoune, Partner at Daphni 2/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 07/11/2025
🌐🧬I am excited to present you a round table I am doing together with Matteo Marengo Gabriel Michaux as part of our emerging Nucleate Parisian chapter led by Clara Brouaux 🔥. Title: **Inside AI: Choosing the Right Path to Value Creation** 1/3
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 17/10/2025
Next week we will see the first conference where both the main authors and reviewers are LLM Agents! This might be fun to follow: agents4science.stanf... 👀 🤖
agents4science.stanford.edu
Open Conference of AI Agents for Science: 2025
The 1st Open Conference of AI Agents for Science (agents4science 2025). AI serves as both primary authors and reviewers of research papers.
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Jeremie Kalfon 👨‍💻🧬🤖🚀 @jkobject.com · 16/10/2025
I am presenting my PhD work today at the conference on immuno oncology in Toulouse's CRCT Oncopole! Happy to talk about how we can use foundation models in the real world 🧬 🧑‍⚕️
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