... dwarfs what is used to train even today's frontier LLMs. Your mission is to design the architectures and training recipes that turn these multimodal observations into a model that predicts the future ...
... dwarfs what is used to train even today's frontier LLMs. Your mission is to design the architectures and training recipes that turn these multimodal observations into a model that predicts the future ...
Physical observations arrive continuously, in many formats, at a scale that dwarfs what is used to train today's LLMs. Your mission is to build the data platform underneath it all - the storage ...
Physical observations arrive continuously, in many formats, at a scale that dwarfs what is used to train today's LLMs. Your mission is to build the data platform underneath it all - the storage ...
Dwarfs information
What is the difference between Dwarfs vs Miners?
| Aspect | Dwarfs | Miners |
|---|---|---|
| Required Credentials | Varies; often folklore-based or fictional roles | Mining certifications, safety training |
| Work Environment | Fictional or entertainment settings | Underground or surface mining sites |
| Industry Usage | Entertainment, folklore, fantasy | Natural resources extraction |
In summary, Dwarfs are typically fictional characters from folklore and fantasy settings, whereas Miners are real professionals working in the mining industry with specific certifications and safety requirements. The two roles differ significantly in credentials, environment, and industry context.
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Full-time
Posted 29 days ago
Job description
To achieve this breakthrough, we are building a Large Physics foundation Model (LPM) because physical systems, unlike text or images, are governed by verifiable cause and effect. We believe that scaling on physics will enable an understanding of causality required to predict and control physical systems, starting with weather.
Our founding team has built and deployed AI against the physical world in robotics, drug discovery, and particle physics at institutions like DeepMind, Waymo, Cruise, Insitro, Nabla Bio, and CERN.
We look for researchers who are excited to tackle unsolved problems. Predicting how physical systems evolve means learning from observations that language and vision models were not built for - sparse sensors, point clouds, hyperspectral imagery, physical fields - at a scale that dwarfs what is used to train even today's frontier LLMs. Your mission is to design the architectures and training recipes that turn these multimodal observations into a model that predicts the future of the physical world.
Responsibilities
- Design and implement novel model architectures and training algorithms for learning from massive, multimodal physical data
- Solve core modeling problems unique to physical prediction: encoding heterogeneous and irregularly-sampled modalities, stable long-horizon rollouts, and probabilistic forecasting
- Run experiments and ablations that connect modeling and data decisions to predictive skill, including which data sources and mixtures most improve the model
- Work across the full ML stack - data, model, eval, and infrastructure - to take ideas from prototype to scaled training runs
- Stay up-to-date on research to bring new ideas to work
What we're looking for
We value a relentless approach to problem-solving, rapid execution, and the ability to quickly learn in unfamiliar domains.
- Strong grasp of machine learning fundamentals, with depth in at least one relevant domain (e.g. sequence or world models, computer vision, sensor fusion, generative modeling, physics-informed NNs)
- Experience training large-scale models and the ability to understand experimental results through careful analysis and ablation studies
- Familiarity with distributed training and the systems considerations of scaling models
- A track record of turning open-ended research problems into production models