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Staff Data Scientist

Experis

 

Lehi, UT, USA

Posted On: 30+ days ago
Experience: 5+ years
Availability: Hybrid
Openings: 1
Category: Data Scientist
Tenure: No Preference/Any
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Description

You will design and deploy predictive models that enable intelligent home energy decisions, optimizing comfort, cost, and demand-response strategies.

Responsibilities

  • Build and deploy advanced models for occupancy, runtime, cost forecasting, anomaly detection, and preconditioning.
  • Optimize energy operations by improving the reliability of Demand Response (DR), Time-of-Use (TOU) shifting, and Virtual Power Plant (VPP) strategies.
  • Partner with data engineering to transform legacy data structures into documented, reusable data products for ML and real-time analytics.
  • Embed intelligence into production systems by collaborating with product, engineering, and analytics teams.
  • Translate complex model outcomes into actionable insights for technical and non-technical audiences.

Required Skills

  • 5+ years of experience in the energy industry with demonstrated technical leadership on high-impact modeling initiatives.
  • Proven expertise in predictive modeling, forecasting, and applied ML, including regression, gradient boosting, time-series, and causal inference.
  • Strong proficiency in Python (Pandas, NumPy, scikit-learn) and experience with distributed compute environments (Spark, Databricks, GCP).
  • Experience with energy forecasting, thermal modeling, or Demand Response optimization.
  • Understanding of energy markets, Distributed Energy Resources (DER), and Virtual Power Plant (VPP) concepts.
  • Experience working with large-scale event and sensor data, preferably within energy, IoT, or device-driven ecosystems.
  • Ability to take models from concept to production in collaboration with engineering partners.
  • Skilled in statistical analysis, feature engineering, and experimental design (e.g., A/B testing).

Preferred Skills

  • Familiarity with LLM or generative AI applications in analytics and optimization.
  • Advanced degree (MS/PhD) in a quantitative field such as Statistics, Computer Science, or Engineering.

Education

Any Graduate

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