Demo

Data Scientist - W2

Aroha Technologies, Inc
Washington, DC Contractor
POSTED ON 4/24/2026 CLOSED ON 4/26/2026

What are the responsibilities and job description for the Data Scientist - W2 position at Aroha Technologies, Inc?

Job Description

Job Title: Senior Data Scientist – ML & Operational Analytics

Duration: Long-term

Work Schedule: Hybrid (Contract Full Time)

Location: 701 9th Street. Northwest Washington, DC 200608

Role Overview

The Senior Data Scientist – ML & Operational Analytics will sit on the business-facing side of data science, partnering directly with operational and infrastructure stakeholders to define problems, build machine learning solutions, and deploy models into production.

This role is not a backend data engineering or IT support position. It is a full‑lifecycle data science role focused on solving real business problems through predictive modeling, analytics, and AI.

You will support multiple initiatives across Safety and Infrastructure Analytics, with a heavy emphasis on asset health, reliability, efficiency, and operational performance. Approximately 60% of the role is new model development, with the remaining 40% enhancing and maintaining existing models.

Key Responsibilities

Machine Learning & Analytics

  • Design, develop, and deploy machine learning models including regression, classification, and time‑series models for operational use cases.
  • Apply advanced statistical and ML techniques to large‑scale datasets (terabytes to petabytes), including:
    • Smart‑meter data
    • Smart‑grid and IoT data
    • Structured (relational databases)
    • Unstructured data (text, documents, and limited multimedia)
  • Perform feature engineering, data validation, and quality assessment to ensure model reliability and interpretability.
  • Enhance existing models and pipelines while leading the development of net‑new solutions.
Business Partnership & Problem Solving

  • Work directly with business stakeholders to:
    • Identify operational problems
    • Translate business needs into analytical frameworks
    • Define success metrics and model outcomes
  • Clearly communicate analytical findings, model results, and recommendations to non‑technical audiences.
  • Validate insights with the business and iterate based on feedback.
  • Own solutions end‑to‑end: problem → data → model → deployment → business adoption.
Data Science Lifecycle & Collaboration

  • Collect, cleanse, standardize, and analyze data from multiple internal and external sources.
  • Collaborate closely with:
    • Information architects
    • Data engineers
    • Project and program managers
    • Other data scientists and analysts
  • Ensure smooth handoff and adoption of deployed solutions.
  • Document methodologies, assumptions, and results to support governance and reuse.
  • Act as a subject matter expert in machine learning, AI, feature engineering, data mining, and statistical modeling.
Required Qualifications

  • MS degree in Computer Science, Statistics, Mathematics, Engineering, Physics, or a related quantitative field (or 15 years of equivalent professional data science experience)
  • 5 years of hands‑on experience as a data scientist working on operational analytics or applied ML problems.
  • Proven experience building and deploying ML models—not just training or research models.
  • Strong proficiency in:
    • Python (primary)
    • R
    • SQL
    • Common ML libraries (e.g., scikit‑learn, statsmodels, etc.)
  • Strong foundation in:
    • Probability and statistical inference
    • Regression techniques
    • Experimental design and validation
  • Demonstrated experience working closely with business stakeholders to deliver production solutions.
Preferred Qualifications

  • PhD in Computer Science, Statistics, Mathematics, Engineering, Physics, or related field.
  • Experience within an Electric Utility, Energy, Infrastructure, or Industrial environment.
  • Hands‑on experience with Azure Machine Learning for model development and deployment.
  • Knowledge of optimization techniques, including:
    • Linear programming
    • Mixed‑integer optimization
  • Exposure to:
    • Computer vision
    • Generative AI use cases
  • Azure certifications are a plus.

Salary : $65 - $70

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