Data Scientist

$90K — $130K *
US-AnywhereRemote in United States
Education, Government & Non-Profit
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Data Science, Computer Science, AI/ML, Statistics, or related field.
  • 7+ years of experience in data science or machine learning.
  • Expertise in ML techniques like anomaly detection, regression, and clustering.
  • Experience in statistical analysis and model validation.
  • Familiarity with dashboard integration for BI platforms.
  • Proficiency in Python, R, or similar for analytics.
  • Strong SQL skills and knowledge of data transformation.

Responsibilities

  • Build machine learning models for various analytical needs.
  • Analyze diverse datasets to identify patterns and opportunities.
  • Develop predictive models for uptime and incident forecasting.
  • Conduct statistical analysis and A/B testing for validation.
  • Collaborate with dashboard teams to integrate insights.
  • Create data pipelines and preprocessing workflows for models.
  • Produce clear visualizations and technical documentation.

Benefits

  • Fully remote work environment.
  • Engagement with a federal and DoD-aligned mission.
  • Opportunity to work with diverse operational datasets.
  • Collaboration with cross-functional teams including engineers and PMO leadership.
  • Focus on innovative analytics that has a direct impact.
Full Job Description
Overview

DecisionPoint seeks a Data Scientist to develop advanced analytics, machine learning models, and predictive capabilities that support operational visibility and decision-making across a large federal and DoD-aligned mission environment. This role analyzes operational, engineering, and IT datasets to build anomaly detection models, performance forecasting algorithms, predictive insights, and automated root-cause detection workflows.

The Data Scientist collaborates closely with the dashboard team, operations and engineering teams (O&E), developers, and PMO leadership to design experiments, validate models, and produce meaningful insights that feed enterprise dashboards and drive optimization opportunities.

This position is fully remote.

Duties & Responsibilities

The Data Scientist will:

  • Build machine learning models for anomaly detection, performance forecasting, trend prediction, and automated root-cause analysis.
  • Analyze operational, engineering, and IT data from diverse mission systems to identify patterns and optimization opportunities.
  • Develop predictive models supporting uptime forecasting, incident prediction, and performance thresholds.
  • Conduct statistical analysis, A/B testing, and experimental design to validate hypotheses and model outputs.
  • Work closely with the Dashboard COE to integrate ML-driven insights into executive-facing dashboards.
  • Develop data pipelines, transformations, and preprocessing workflows needed for ML/analytics models.
  • Collaborate with SMEs and system owners to understand domain data, context, and mission-critical indicators.
  • Produce data stories, visualizations, narrative explanations, and technical documentation of analytical methods.
  • Recommend improvements to monitoring tools, data collection practices, and performance KPIs.
  • Ensure all analytic outputs align with federal, DoD, and program data governance and security requirements.
Qualifications

Clearance Requirement

Candidate must possess a Tier 2 Moderate Risk Public Trust (from any federal agency) or an active Secret clearance or higher.

Education (Required)

Bachelors degree in Data Science, Computer Science, Artificial Intelligence/Machine Learning, Statistics, or a related field.

Experience (Required)

  • Minimum 7 years of experience performing data science, advanced analytics, or machine learning.
  • Experience applying ML techniques such as classification, anomaly detection, regression, clustering, or time-series forecasting.
  • Experience designing experiments, running statistical analyses, and validating model performance.
  • Experience working with operational, engineering, or IT datasets and translating findings into actionable insights.
  • Experience collaborating with dashboard teams or integrating analytical outputs into BI platforms.

Technical Knowledge (Required)

  • Proficiency with Python, R, or similar languages used for statistics and machine learning.
  • Strong understanding of ML algorithms, feature engineering, and model evaluation.
  • Experience with SQL and data transformation pipelines.
  • Familiarity with visualization tools such as Power BI, Tableau, or similar platforms.

Technical Knowledge (Preferred)

  • Experience operating in cloud environments (AWS preferred).
  • Familiarity with DevSecOps, automation, or CI/CD analytics integration.
  • Experience with distributed computing or big data analytics frameworks.

Certifications

Required:

  • ITIL v4 Foundation

Preferred:

  • Data science, analytics, or ML certifications
  • AWS cloud or machine learning specialty certifications

Skills

  • Strong analytical and mathematical reasoning skills.
  • Ability to translate complex findings into concise dashboards or executive summaries.
  • Excellent problem-solving and model debugging skills.
  • Strong communication and collaboration skills across technical and business teams.
  • High attention to detail and commitment to model accuracy and data validity.

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