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Terra AI

Staff Machine Learning Engineer

Reposted 14 Days Ago
Remote
Hiring Remotely in US
Senior level
Remote
Hiring Remotely in US
Senior level
Lead design, training, and iteration of diffusion-based generative models producing 3D geological models conditioned on geophysical and borehole data; curate synthetic and real datasets; adapt models for projects and collaborate with teams.
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About Terra AI

We are building the state-of-the-art AI platform for the discovery and development of clean energy and mineral resources. We bring the most advanced techniques in generative AI, foundation modeling, and autonomous decision optimization to tackle the most important problems in the geosciences. These systems can help more reliably identify critical resource deposits, more rapidly measure and characterize them, and design more efficient and sustainable production plans.

We are backed by Khosla Ventures and other leading venture investors. We are now looking to grow our team from ~15 to ~30 by the end of the year to continue to mature our technology and support deployment with our world-class mineral and clean energy partners.

Role description

In the same way image generators have shown the remarkable ability to produce a diverse set of realistic pictures conditioned on a text prompt (and other inputs), we are developing a generative model that produces 3D geological models conditioned on geophysical surveys, bore hole measurements, and other forms of physical observation. The outputs of the generative model capture what we know and don’t know about the state of the subsurface, allowing explorers to make maximally informed decisions about how and where to explore for critical resources. 

We are looking for a talented deep learning engineer or scientist to lead the development of this model that will revolutionize decision making in the earth subsurface for a wide range of clean energy applications.

Role Responsibilities
  • Design, train, test, and iterate on diffusion models for 3D geological models

  • Design, train, test, and iterate on an approach to for conditioning generation on geophysical data and other observations

  • Inform the generation of synthetic data to improve model performance

  • Adapt diffusion modeling approach to specific real-world projects in collaboration with project teams. 

Qualifications

Required Qualifications:

  • Extensive PyTorch Experience

    • Deep understanding of PyTorch, including writing custom modules, optimizing training, and debugging issues in large-scale models.

  • Expertise in Developing Large Deep Learning Models from Scratch

    • Proven ability to design, implement, and train complex deep learning architectures from the ground up.

  • Data Curation Skills

    • Hands-on experience in creating, cleaning, and maintaining high-quality datasets tailored for machine learning applications.

  • Strong Software Engineering and Design Experience

    • Proficient in software development best practices, including version control, testing, and code optimization.

    • Familiarity with designing scalable and maintainable systems.

Bonus points if you:

  • Experience with Generative Models

    • Familiarity with generative architectures, particularly diffusion models, and an emphasis on posterior sampling methods.

  • Knowledge of Transformer Architectures

    • Experience building and training transformers, especially in applications involving 3D data.

  • Scaling Models Across Large GPU Clusters

    • Expertise in parallelizing models across multiple GPUs and optimizing distributed training pipelines.

  • Cloud Infrastructure Expertise

    • Experience setting up, managing, and optimizing cloud environments for machine learning workloads, including provisioning resources and managing costs.

Top Skills

Cloud Infrastructure
Diffusion Models
Distributed Training
Gpu Clusters
PyTorch
Transformer Architectures

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