Software Engineer - ML Platform (Staff / Sr Staff)
Equilibrium EnergySan Francisco or US RemotePosted 27 March 2026
Job Description
About our Company
Equilibrium Energy is a team of technologists, power market experts, and AI pioneers reimagining how the world’s most critical industry operates. We’re building a first-of-its-kind AI operating system for the power sector, uniting cutting-edge science with real-world purpose to enable a cleaner, more resilient energy future. At EQ, you’ll join a tight-knit group of brilliant, curious, and adventurous people who bring the same energy to collaboration as they do to innovation.
Equilibrium Energy is a well-funded, Series B clean energy startup backed by some of the most prominent institutional investors in climate.
New colleagues will share our vision that a next-generation energy company must be built from the ground up on deep industry expertise combined with an unwavering commitment to modern digital approaches.
We’re looking for collaborative, talented, passionate and resourceful folks to join our team and help us lay the foundation for our important mission and ambitious plan.
What we are looking for
Our power sector is in the middle of a major transformation. Its increasingly renewable resource mix and demand-side changes require algorithmic management far beyond what was historically required. Because of this, scalable model development and deployment is at the heart of what EQ does. We are looking for
Staff / Sr Staff Software Engineers
who are passionate about helping to deliver this scientific platform – to stay at the forefront of AI/ML technology and operationalize those solutions at enterprise scale.
What you will do
You will be a member of EQ’s Science Platform team. Our Science Platform enables our internal data scientists, as well as external customers, to develop, experiment with, deploy, and monitor forecasting and optimization models at scale. We sit between our data and infra engineers and our scientists - developing frameworks for model development that are both robust and efficient to iterate within. We help bring the algorithmic capabilities of our scientists to a broad range of customer energy applications.
Key Responsibilities:
Abstract away the complexities behind the deployment and orchestration of a large number of forecasting workflows, enabling a fast model development lifecycle for our Science team
Integrate with data and compute infrastructure to optimize resource utilization and performance
Implement automated testing and monitoring for ML models in production
Maintain and iterate on our model registry and experiment tracking
Co-design frameworks that support model experimentation, hyperparameter tuning, training, and deployment
Partner with our Data Services team to incrementally improve our feature store and tie it to the EQ ontology
Collaborate closely with data scientists to understand new model requirements and together implement solutions that are robust, validated, and scalable
Collaborate with the Science Platform Simulation team to incorporate forecasting into physical and portfolio asset optimizations
Partner with our Product and Customer Delivery teams to enable external customers to perform similar tasks to our internal scientists, with minimal code divergence and following security best practices
Stay up-to-date with the latest advancements in ML engineering and integrate best practices into the platform
The minimum qualifications you’ll need
A commitment to clean energy and combating climate change
Proficiency and 5+ years experience in Python software development
Familiarity with automated build, deployment, and orchestration tools such as CI/CD, Pants, Docker, Metaflow, Argo, and Kubernetes
Strong understanding of data pipelines, ETL, and data infrastructure
Experience with observability tooling like Grafana, Honeycomb, and Prometheus
Experience with common machine learning algorithms and libraries (xgboost, sklearn, pytorch, pandas, polars, pandera)
Prior experience in operationalizing machine learning workflows
Agility in working ... (truncated, view full listing at source)
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