Lead Data Scientist

Peraton

• $146K — $234K *
Information Technology
11 - 15 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree with 16+ years of experience, or an Associate's degree with 18+ years, or a High School diploma/equivalent with 20+ years of experience.
  • Must be a U.S. citizen eligible for Public Trust clearance.
  • 15+ years in data science, AI/ML, and advanced analytics for enterprise modernization.
  • Proven leadership in AI/ML initiatives for complex systems.
  • Deep expertise in machine learning and statistical modeling techniques.
  • Experience with end-to-end MLOps pipelines and real-time analytics architectures.
  • Strong proficiency in Python, R, and AI/ML technologies like TensorFlow and PyTorch.

Responsibilities

  • Lead enterprise data science and AI/ML initiatives for a large-scale modernization program.
  • Design and implement machine learning and advanced analytics solutions in production.
  • Manage MLOps practices for model lifecycle and automation.
  • Apply advanced data science techniques, including NLP and anomaly detection.
  • Collaborate with cross-functional teams to integrate AI/ML capabilities into enterprise systems.
  • Support multi-system integrations across vendors and platforms.
  • Establish AI governance frameworks for compliance and ethical considerations.

Benefits

  • Hybrid work environment in Suitland, MD.
  • Opportunities for mentoring and professional development.
  • Collaboration with diverse and qualified individuals.
  • Engagement in cutting-edge data-centric and cloud-native projects.
Full Job Description
Responsibilities

Peraton is seeking an experience Lead Data Scientist to join our team of qualified and diverse individuals. This position supports our customer as part of an application transformation and modernization initiative. This program is driving a large-scale transformation of systems into a data-centric, cloud-native ecosystem capable of supporting high-volume, near real-time data processing and advanced analytics. The work includes modernization of legacy applications, development of new cloud-native solutions, and implementation of DevSecOps and scaled Agile practices across the organization.

 

As a Lead Data Scientist at Peraton, you will define and drive enterprise data science and AI/ML strategy across a large-scale federal modernization program.

 

You will lead efforts spanning advanced analytics, machine learning, MLOps, AI governance, and operational analytics integration across complex enterprise systems. This role requires close collaboration with data engineering, architecture, application development, and operational teams to ensure AI/ML capabilities are production-ready, scalable, explainable, and integrated into enterprise workflows.

 

You will operate at both strategic and hands-on levels guiding technical direction, developing advanced models, and ensuring analytics solutions deliver measurable mission impact.

 

Location: Suitland, MD (Hybrid)

Day to Day Roles and Responsibilities
  • Provide technical leadership across enterprise data science and AI/ML initiatives within a large-scale modernization program
  • Design, develop, validate, deploy, monitor, and scale machine learning and advanced analytics solutions in production environments
  • Lead implementation of MLOps practices supporting model lifecycle management, automation, observability, and continuous improvement
  • Apply advanced data science techniques including NLP, LLMs, deep learning, reinforcement learning, anomaly detection, and time series analysis
  • Design and support event-driven analytics and real-time/streaming ML pipelines
  • Collaborate with data engineers, architects, application teams, and SMEs to integrate AI/ML capabilities into enterprise systems and operational workflows
  • Support system-of-systems (SoS) integrations across multiple systems, vendors, contractors, and interdependent platforms
  • Establish AI governance frameworks supporting fairness, bias mitigation, explainability, transparency, and compliance with standards such as the NIST AI Risk Management Framework
  • Develop reproducible analytics workflows, technical documentation, analysis plans, dashboards, and reporting deliverables
  • Support DataOps and Agile data science practices including iterative development, pipeline automation, CI/CD integration, and collaborative model delivery
  • Ensure analytics solutions align with enterprise security, privacy, and compliance requirements
  • Drive improvements in data quality, validation, accessibility, and operational analytics reliability
  • Present findings, recommendations, and technical approaches to executive leadership and stakeholders
  • Mentor data scientists and analytics teams while promoting best practices across the organization
Qualifications

Basic Qualifications:

  • Bachelors degree and 16 years of experience or an Associates degree and 18 years of experience or a High School diploma/equivalent and 20 years of experience.
  • Must be a U.S. Citizen with the ability to obtain a Public Trust clearance
  • 15+ years of experience in data science, AI/ML, advanced analytics, or enterprise modernization initiatives
  • Proven experience leading AI/ML and analytics efforts across large-scale, complex systems
  • Deep expertise in machine learning, statistical modeling, and advanced analytics techniques
  • Experience implementing end-to-end MLOps pipelines including model training, validation, deployment, monitoring, and scaling
  • Experience with NLP, LLMs, deep learning, reinforcement learning, anomaly detection, and time series analytics
  • Experience designing and supporting real-time or streaming analytics architectures
  • Experience integrating AI/ML solutions across system-of-systems (SoS) environments and distributed enterprise platforms
  • Experience implementing AI governance frameworks addressing explainability, fairness, transparency, and bias mitigation
  • Experience with large-scale distributed data environments and cloud-native analytics platforms
  • Experience with DataOps, CI/CD integration, and Agile/SAFe delivery models
  • Strong experience with Python, R, Spark, TensorFlow, PyTorch, Databricks, and related AI/ML technologies
  • Experience developing dashboards, technical reports, analysis plans, and reproducible analytics workflows
  • Experience collaborating across engineering, architecture, application, and operational teams at enterprise scale

Preferred Qualifications:

  • PhD is highly preferred in related technical field
  • Experience supporting statistical and similarly large-scale federal modernization programs
  • Experience implementing enterprise AI governance or responsible AI initiatives
  • Experience with event-driven architectures, streaming analytics, or operational AI systems
  • Experience supporting large-scale data modernization or enterprise analytics transformation efforts
  • Experience working within DevSecOps-enabled AI/ML delivery environments
Target Salary Range$146,000 - $234,000. This represents the typical salary range for this position. Salary is determined by various factors, including but not limited to, the scope and responsibilities of the position, the individuals experience, education, knowledge, skills, and competencies, as well as geographic location and business and contract considerations. Depending on the position, employees may be eligible for overtime, shift differential, and a discretionary bonus in addition to base pay.

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