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Arcadia Power, Inc. is seeking a Data Scientist to join our Applied AI team in Chennai, India.
You will work hands-on on core ML/AI workstreams including utility data extraction, consumption forecasting, and production workflows, collaborating with senior data scientists and engineers to deliver impactful models for central business operations. This role is suitable for early-career professionals with broad exposure to applied ML—from classifiers to forecasting and prompts tuning—contributing to
Who We Are
Arcadia is the AI-powered energy intelligence platform for businesses. We replace fragmented tools and manual workflows with one platform to pay utility bills, buy energy, and advance sustainability — across every location, at enterprise scale.
Trusted by Fortune 2000 companies, Arcadia combines unified data, AI-powered analytics, and expert advisory to help enterprise teams save money, mitigate risk, and cut carbon .
We deliver this through three comprehensive solutions:
Tackling the world's most complex energy challenges requires diverse thinking. We're building teams of people from different backgrounds, industries, and disciplines — united by a belief that energy management should be simple, intelligent, and a genuine driver of business value.
We are looking for a Data Scientist to join our Applied AI team. This is a hands‑on, generalist role working across Arcadia’s core ML and AI workstreams: utility data extraction, consumption forecasting, and agent‑powered production workflows. You will work directly with senior data scientists and engineering to build, evaluate, and ship models that drive meaningful impact on central business operations.
This role is a strong fit for someone early in their career who wants broad exposure to applied ML—from building classifiers and forecasting models to tuning prompts and supporting evaluation frameworks.
This is not a research role, a pure NLP or LLM engineering role, or a data analytics/BI role. Candidates whose experience is primarily in dashboarding, reporting, or model‑free data work are not a fit. Candidates who have only worked in academic or research settings without production deployment experience should be screened carefully.