Data Scientist

Zantech

$120K — $145K *
Enterprise Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 10+ years in developing and deploying analytical models in a DoD organization
  • 10 years of experience in data science with Python, R, and SQL
  • 10 years in data wrangling, integrating structured and unstructured data
  • 5 years of experience with big data and cloud analytics platforms
  • Master's degree in a related field (or BA/BS with additional experience)
  • Familiarity with federal data governance frameworks (e.g., NIST SP 800-53)
  • Cloud ML/AI certification preferred.

Responsibilities

  • Lead the design and deployment of AI/ML models and dashboards
  • Implement NLP and network analysis on portfolio data
  • Manage the automated MLOps lifecycle for model and performance monitoring
  • Ensure outputs meet Responsible AI governance and security standards
  • Provide training and support to enhance data literacy across teams

Benefits

  • On-site role in Arlington, VA for direct collaboration with stakeholders
  • Opportunity to shape the strategy for advanced analytics and AI initiatives
  • Contribution to impactful projects in cybersecurity and operational readiness
  • Engagement in a collaborative work environment with a focus on training
  • Potential for involvement in cutting-edge technology applications in data science
Full Job Description
Zantech is looking for a talented Data Scientist to contribute to the success of our upcoming Technical Infrastructure and Platform Support project for an On-Site role based out of Arlington, VA.

The Data Scientist will play a crucial role in providing:
  • Data Acquisition, Analytics, and Governance Services (technical lead for all Task 3 work)
  • Cybersecurity and Information Assurance (Responsible AI / AI TRiSM, RLS/CLS-compliant model outputs)

The Data Scientist serves as the technical lead, owning the strategy, design, and deployment of advanced analytical and AI/ML models. Extracts, transforms, and analyzes complex, multi-source data sets to generate actionable insight that informs workforce, logistics, and operational decision-making for leadership.

Responsibilities include, but will not be limited to:
  • Design, develop, and deploy predictive, prescriptive, descriptive, and cognitive AI/ML models and dashboards in collaboration with stakeholders
  • Apply NLP, network analysis, and bibliometric analysis to S&T portfolio data
  • Support automated MLOps lifecycle management, including model registry, drift monitoring, and automated retraining triggers
  • Ensure AI/ML outputs comply with Responsible AI (RAI) governance and inherit Row-Level/Column-Level Security controls
  • Provide onboarding, training, and ongoing support to build a data-literate workforce

Required Experience or Knowledge of the following technologies/functions:
  • Ten (10)+ years developing and deploying analytical models to address S&T or business requirements within a DoW organization
  • 10 years in data science (statistical analysis, predictive modeling, machine learning, algorithm development in Python, R, and SQL)
  • 10 years in data wrangling and batch/streaming pipeline development, integrating structured and unstructured sources; experience on at least 2 distinct projects applying NLP, network analysis, or bibliometric analysis to S&T portfolio data
  • 10 years using data visualization tools (Tableau, Power BI, matplotlib)
  • 5 years with big data and cloud-based analytics platforms
  • 5 years applying operational analytics to workforce, logistics, or readiness missions.
  • Skills Required:
    • Statistical analysis and predictive/prescriptive/descriptive/cognitive modeling
    • Python, R, SQL; ML/AI model development and MLOps lifecycle management
    • Natural Language Processing (NLP), network analysis, and bibliometric analysis of S&T data
    • Data visualization and stakeholder communication of analytical findings
    • Federal data governance and security frameworks (NIST SP 800-53, FISMA, DoD RMF)

Required Education/Certifications:
  • Education Required:
    • Master's degree in computer science, engineering, or a related discipline, and 10+ years of experience
  • BA/BS with 12+ years of experience is an accepted substitute,
  • Education Preferred:
    • Master's or Ph.D. in Data Science, Statistics, Computer Science, or a related quantitative field
  • Not specified
  • Cloud ML/AI platform certification (e.g., AWS Certified Machine Learning - Specialty, Microsoft Certified: Azure AI Engineer Associate)
  • Certifications Required:
  • Certifications Preferred:

Required Security Clearance:
  • US Citizenship and the ability to obtain and maintain an active Secret or higher clearance, per contract requirements.

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