Atmospheric Engineer
Cupertino, CA
Gridmatic
The CompanyGridmatic Inc. is a high-growth startup with offices in the Bay Area and Houston that is accelerating the clean energy transition by applying our expertise in data, machine learning, and energy to power markets. We are the rare startup that has multiple years of profitability without raising venture capital. Gridmatic is a great place to work with a culture that values teamwork, continuous learning, diversity, and inclusion. We move quickly and fix things. We are environmentally and data-driven, with a growth-oriented, academic mindset. We value integrity as much as excellence.
The RoleWe are looking for an Atmospheric Engineer to apply their deep expertise to directly influence our models and strategies, contributing to the clean energy transition. This is a hands-on, individual contributor role where you will leverage your scientific knowledge and engineering skills in a fast-moving, impactful startup environment. You will evaluate, and integrate complex atmospheric data and models into our prediction systems, which drive real-time energy trading and optimization decisions. You will join our ML team, eventually owning a portion of model development.
What you might work on:Research and develop & Internal Weather Models:- Participating in the R & D process of building our internal weather modeling capabilities.- Fine-tuning existing state-of-the-art AI models (e.g., based on GenCast, NeuralGCM)- .- Post-processing existing SOTA AI forecasts to debias and recalibrate for our downstream power predictions.- Incorporating and evaluating model changes, pushing the boundaries of how we forecast weather variables relevant to the energy sector.
Evaluating & Integrating External Weather Products:- Surveying and evaluating the suitability of various Numerical Weather Prediction (NWP) and commercially available AI weather forecast products for our power production and price models.- Rigorously evaluating and monitoring the performance of integrated weather products, analyzing their impact across different regions, timeframes, and weather regimes. - Working with external data providers (like NOAA) to define data requirements. Build, monitor, and maintain data ingestion pipelines.
Evaluating & Running AI Weather Models In-house:- Develop evolving metrics for AI weather models for our unique specifications.- Optimize evaluation pipelines built with Cloud DataFlow- Set up, run, and monitor SOTA AI weather forecasts on our GPU cluster.
Generic Time Series Modeling:- You might also apply your modeling skills to improve generic time series models for power production or energy price forecasting, using ML libraries like PyTorch or JAX.
Across all workstreams, you will be expected to:- Write and maintain significant Python code within a Git-based software development workflow.- Continuously learn about grid power modeling and the intricacies of energy markets.
What’s your policy on remote work?We value the ability to work and collaborate in-person in our early stage as a startup, so Gridmatic has a hybrid policy of "50% in-office”. Most of the company works in our Cupertino office 2 or 3 days a week.
Join our team and make a difference! Click below or email us at careers@gridmatic.com.
The RoleWe are looking for an Atmospheric Engineer to apply their deep expertise to directly influence our models and strategies, contributing to the clean energy transition. This is a hands-on, individual contributor role where you will leverage your scientific knowledge and engineering skills in a fast-moving, impactful startup environment. You will evaluate, and integrate complex atmospheric data and models into our prediction systems, which drive real-time energy trading and optimization decisions. You will join our ML team, eventually owning a portion of model development.
What you might work on:Research and develop & Internal Weather Models:- Participating in the R & D process of building our internal weather modeling capabilities.- Fine-tuning existing state-of-the-art AI models (e.g., based on GenCast, NeuralGCM)- .- Post-processing existing SOTA AI forecasts to debias and recalibrate for our downstream power predictions.- Incorporating and evaluating model changes, pushing the boundaries of how we forecast weather variables relevant to the energy sector.
Evaluating & Integrating External Weather Products:- Surveying and evaluating the suitability of various Numerical Weather Prediction (NWP) and commercially available AI weather forecast products for our power production and price models.- Rigorously evaluating and monitoring the performance of integrated weather products, analyzing their impact across different regions, timeframes, and weather regimes. - Working with external data providers (like NOAA) to define data requirements. Build, monitor, and maintain data ingestion pipelines.
Evaluating & Running AI Weather Models In-house:- Develop evolving metrics for AI weather models for our unique specifications.- Optimize evaluation pipelines built with Cloud DataFlow- Set up, run, and monitor SOTA AI weather forecasts on our GPU cluster.
Generic Time Series Modeling:- You might also apply your modeling skills to improve generic time series models for power production or energy price forecasting, using ML libraries like PyTorch or JAX.
Across all workstreams, you will be expected to:- Write and maintain significant Python code within a Git-based software development workflow.- Continuously learn about grid power modeling and the intricacies of energy markets.
You might be a good fit if you:
- Have a degree in Atmospheric Science, Meteorology, or a closely related quantitative field.
- Have experience working with atmospheric models (NWP and/or AI models) and large meteorological datasets.
- Possess strong proficiency in Python programming.
- Experience in Machine Learning.
- Are comfortable working in a Linux environment and using Git for version control.
- Have experience running computational jobs on clusters or cloud computing environments.
- Have a demonstrated ability to analyze and interpret complex scientific data and model outputs.
- Are an effective communicator, able to explain complex weather concepts to non-experts.
- Are naturally curious and eager to learn about new domains, particularly energy systems and time-series modeling.
- Thrive in a fast-paced, dynamic startup environment where priorities can evolve
What’s your policy on remote work?We value the ability to work and collaborate in-person in our early stage as a startup, so Gridmatic has a hybrid policy of "50% in-office”. Most of the company works in our Cupertino office 2 or 3 days a week.
Join our team and make a difference! Click below or email us at careers@gridmatic.com.
* Salary range is an estimate based on our AI, ML, Data Science Salary Index 💰
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Category:
Engineering Jobs
Tags: Dataflow Engineering Git GPU JAX Linux Machine Learning ML models Pipelines Python PyTorch R R&D Research
Perks/benefits: Career development Startup environment
Region:
North America
Country:
United States
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