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You will own the full lifecycle of ML model development, from exploratory analysis and design to production deployment and monitoring. You will collaborate with engineering and cross-functional teams to translate business objectives into reliable, data-driven forecasting solutions.
The Role
We're looking for a Machine Learning Engineer to own and advance the forecasting and predictive modeling capabilities at the heart of the Camus platform. This is an individual contributor role with real technical depth and product influence; you'll be responsible for the full lifecycle of ML model development, from exploratory analysis and model design through to production deployment and monitoring.
This is not a role where the problem statements are handed to you. You'll work directly with Camus’ teams and external stakeholders to understand their data, define the right questions, and translate messy real-world signals into reliable, production-grade data driven analytics. You'll bring that ground-truth perspective back into product decisions, and work closely within the Engineering team to integrate ML models into our planning and operational workflows.
The forecasting and predictive modeling problems we're solving often don't have off-the-shelf answers. We work as a tight, technical team that moves with urgency but builds with the discipline that production-grade software demands. If you want to do the most technically interesting ML work in the clean energy space while directly shaping how it becomes a product, this is the role.
What You'll Do
What You'll Bring
Nice to Have
What We Offer
The expected base salary for this role is $180,000 - $230,000 annually, depending on experience, skills, and qualifications.
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