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Capability Lifecycle AI​/ML Engineer Security Clearance

Job in Norfolk, Virginia, 23501, USA
Listing for: Softek Global Services LLC dba Strategic Growth Partners
Full Time position
Listed on 2026-02-19
Job specializations:
  • IT/Tech
    AI Engineer, Machine Learning/ ML Engineer, Data Scientist
Salary/Wage Range or Industry Benchmark: 48 - 72 USD Hourly USD 48.00 72.00 HOUR
Job Description & How to Apply Below
Position: Capability Lifecycle AI/ML Engineer with Security Clearance
SGP Recruiting provides both operations and strategic support to Tribal 8(a) and commercial organizations. Our client is an ISO certified international Information Technology consulting and Engineering Services company focused on supporting public and private sector customers as they tackle their most daunting Information Technology and business challenges. They are seeking Contractor Support to Capability Lifecycle AI/ML Engineer to support an upcoming NATO ACT program in Norfolk, VA.

This is a great opportunity to be part of an international company specializing in the provision of services in the area of information systems and technologies, outsourcing solutions, and application development services to government and non-government organizations. Working

Location:

Onsite. Norfolk, VA.

Employment Type:

1099, B2B Compensation: $48-72/hr USD Language:
High proficiency level in English language Security Clearance: NATO Secret DUTIES/ROLE:
• AI/ML Model Development:
Design, develop, train, and deploy machine learning models to support forecasting, risk identification, readiness assessment, and decision support across the capability lifecycle.
• Advanced Analytics Integration:
Integrate AI/ML models into enterprise analytics workflows, dashboards, and reporting solutions to enable operational use by analysts and decision-makers.
• Data Preparation and Feature Engineering:
Develop and maintain data preparation pipelines, feature engineering processes, and training datasets in coordination with data engineering teams to ensure model accuracy, robustness, and traceability.
• Cloud-Based AI/ML Engineering:
Implement and operate AI/ML solutions within approved cloud environments, including model training, deployment, and orchestration using secure, scalable architectures.
• Model Lifecycle Management:
Establish and execute model validation, performance monitoring, retraining, and version control processes to ensure sustained accuracy and operational relevance of deployed models.
• Responsible AI Practices:
Apply responsible and explainable AI principles, including transparency, bias awareness, and interpretability, appropriate to defense and decision-support contexts.
• Automation and Optimization:
Identify and implement opportunities to automate analytic workflows, model execution, and data processing to improve efficiency and reduce manual intervention.
• Prototyping and Experimentation:
Design and deliver proof-of-concept and prototype AI/ML solutions, including exploration of emerging techniques (e.g., large language models or incremental learning), aligned with DAO priorities.
• Performance and Scalability Optimization:
Optimize AI/ML pipelines and supporting infrastructure to ensure reliable performance under operational workloads and evolving data volumes.
• Technical Documentation:
Produce and maintain comprehensive technical documentation describing AI/ML models, data dependencies, assumptions, limitations, and operational integration points.
• Stakeholder Engagement:
Collaborate with analysts, engineers, and stakeholders to translate operational requirements into AI/ML solutions and explain analytic outputs to technical and non-technical audiences.
• Knowledge Transfer:
Deliver knowledge transfer, mentoring, and technical guidance to DAO personnel to support long-term sustainment of AI/ML capabilities.
• Security and Compliance:
Ensure AI/ML development and deployment comply with NATO and organizational security, data protection, and classification handling requirements.
• Capability Lifecycle Support:
Apply AI/ML expertise to support requirements-based planning, capability development, delivery monitoring, and performance assessment activities.
Continuous Improvement:
Identify opportunities to enhance AI/ML methods, tooling, and practices in alignment with DAO’s Decision Advantage objectives.
• Technical Support:
Provide ongoing technical support and troubleshooting for AI/ML models, pipelines, and integrated analytic solutions.
• Additional Tasks:
Perform additional tasks as required by the COTR in scope of this labor category. Essential Qualifications/

Experience:

• 8+ years of…
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