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[Remote] Senior Data Scientist, Energy Systems

Work from home Full-time role Hiring

Note: The job is a remote job and is open to candidates in USA. Qcells North America is a subsidiary of Hanwha Q CELLS, a leading photovoltaic manufacturer. They are seeking a highly skilled Senior Data Scientist to join their Grid Energy & Analytics team, focusing on time series forecasting and MLOps to build reliable and scalable forecasting solutions for energy markets.

Responsibilities

  • Design, develop, and deploy high‑quality time series forecasts for energy market prices, ancillary services, energy demand, and renewable generation (e.g., solar PV and wind)
  • Apply a broad range of forecasting methodologies, including classical statistical models, machine learning, and deep learning approaches, selecting methods appropriate to data regimes and business constraints
  • Lead feature engineering efforts incorporating calendar effects, weather signals, exogenous drivers, and regime changes
  • Establish rigorous model evaluation, backtesting, and benchmarking frameworks to ensure accuracy, robustness, and stability over time
  • Architect, build, and maintain end‑to‑end MLOps pipelines, covering data validation, training, versioning, deployment, monitoring, and retraining
  • Ensure forecasting systems are scalable, observable, and reliable in production, with clear SLAs, alerting, and rollback strategies
  • Partner in the design and evolution of an internal forecasting platform that supports the full machine learning lifecycle and multi‑model production hosting
  • Implement best practices for model governance, reproducibility, experiment tracking, and lineage
  • Conduct applied research to identify new modeling techniques, architectures, and tooling that improve forecast accuracy, latency, and operational efficiency
  • Translate research ideas into production‑ready solutions, balancing innovation with maintainability
  • Influence technical roadmap decisions related to forecasting systems, data platforms, and MLOps standards
  • Work closely with engineering, product, and domain experts to ensure forecasting solutions deliver measurable business and operational impact
  • Incorporate energy system constraints and domain knowledge into models to ensure outputs are physically meaningful and actionable
  • Support production operations by troubleshooting issues, analyzing model degradation, and continuously improving system performance

Skills

  • Master's or Ph.D. in statistics, machine learning, applied mathematics, computer science, or a related quantitative field
  • 1-2 years of hands‑on experience in data science or machine learning, with significant exposure to time series forecasting in production
  • Strong proficiency in Python and experience writing production‑quality, maintainable code using modern software engineering practices
  • Deep theoretical and practical knowledge of time series methods, including statistical, regression‑based, and deep learning approaches
  • Demonstrated experience building and operating ML systems in production, including CI/CD for models, monitoring, and lifecycle management
  • Experience with cloud‑hosted platforms (preferably Azure / Fabric), containerization, and distributed compute
  • Proficiency with core data science and ML libraries such as pandas, numpy, statsmodels, sklearn, xgboost, lightgbm, pytorch, keras, and modern forecasting libraries (e.g., Nixtla)
  • Strong problem‑solving skills, ownership mindset, and ability to operate effectively in ambiguous, real‑world environments
  • Travel may be required up to 10%, depending on business needs
  • Experience with energy systems, electricity markets, or infrastructure forecasting, including demand, pricing, or renewable generation
  • Familiarity with power systems concepts such as unit commitment, economic dispatch, or grid constraints
  • Prior experience designing or contributing to forecasting platforms or shared ML infrastructure
  • Exposure to large‑scale data pipelines, streaming or batch processing, and data quality frameworks
  • Experience collaborating across data science, software engineering, and operations teams in a production environment

Company Overview

  • Qcells is a renowned complete energy solutions provider in solar cell and module, energy storage, downstream project business and energy retail. It was founded in undefined, and is headquartered in Irvine, California, US, with a workforce of 501-1000 employees. Its website is http://www.qcells.com/us.
  • Company H1B Sponsorship

  • Qcells North America has a track record of offering H1B sponsorships, with 3 in 2026, 11 in 2025, 14 in 2024, 8 in 2023, 15 in 2022, 4 in 2021, 1 in 2020. Please note that this does not guarantee sponsorship for this specific role.
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