Cyber Systems Engineer/AI Governance Lead/Solutions Architect

LMI Consulting, LLC

Washington (District of Columbia)

Hybrid

USD 185,000 - 225,000

Full time

3 days ago
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Job summary

LMI is seeking a Cyber Systems Engineer/AI Governance Lead/Solutions Architect to drive VA modernization across enterprise architecture, AI governance, data, cloud, and security. The role blends independent solution-architecture judgment with governance leadership to ensure secure, supportable, compliant designs.

Hybrid work with ~25% onsite at Tysons, VA, or Washington, DC headquarters. Requires 10+ years in architecture and proven ability to translate policy and risk into practical controls.

Qualifications

  • Bachelor's degree in computer science, information systems, engineering, cybersecurity, data science, public policy, risk management, or related field; equivalent professional experience may be considered.
  • 10+ years of progressive experience across enterprise/solution architecture, systems design, cybersecurity or technology risk, AI governance, or modernization work.
  • Strong experience translating policy and risk requirements into practical technical controls and architecture decisions.

Responsibilities

  • Lead independent solution-architecture and AI/technology-governance review for VA modernization initiatives.
  • Evaluate solution options for enterprise fit, reuse, integration, maintainability, supportability, scalability, security, data dependencies, and lifecycle cost.
  • Establish risk-tiering and review criteria proportional to use, data sensitivity, and impact.
  • Translate policy, privacy, cybersecurity, and enterprise standards into architecture requirements and controls.
  • Review high-risk AI, data, clinical, identity, automation, and workflow use cases for necessary validation or escalation.
  • Shape tradeoffs across applications, APIs/integration, data, cloud/platform, identity, and AI-enabled patterns.
  • Define non-functional requirements for interoperability, data protection, auditing, observability, resilience, and oversight.
  • Maintain architecture decision records, governance assessments, and traceability artifacts.
  • Develop reference architectures, governance checklists, and patterns to accelerate VA initiatives.
  • Facilitate reviews to produce clear decisions, owners, actions, and escalation paths.
  • Collaborate with cybersecurity/privacy, data, clinical informatics, platform, engineering, testing, and leadership to resolve constraints.
  • Assess technical debt, vendor lock-in, sustainment, and post-deployment monitoring before major decisions.
  • Support readiness reviews as solutions move from design to pilot, deployment, or scale.
  • Track recurring findings and propose shared services or standards to reduce one-off designs.

Skills

Solution Architecture
AI Governance
Cybersecurity
Cloud
Enterprise Architecture

Education

Bachelor's degree or equivalent
TOGAF/AWS/Azure certs recommended

Job description

Cyber Systems Engineer/AI Governance Lead/Solutions Architect

LMI is seeking a Cyber Systems Engineer/AI Governance Lead/Solutions Architect to provide full-time senior technical leadership for Department of Veterans Affairs (VA) modernization initiatives involving enterprise architecture, artificial intelligence, data, automation, cloud, and other emerging technologies. This role combines independent solution-architecture judgment with practical AI and technology-governance leadership so complex solutions are technically feasible, secure, supportable, responsible, and aligned with VA enterprise constraints.

This position follows a hybrid work model, with an expectation of approximately 25% onsite presence at LMI's Tysons headquarters or Washington, DC.

Responsibilities
  • Lead independent solution-architecture and AI/technology-governance review for complex VA modernization initiatives.
  • Evaluate solution options for enterprise fit, reuse, integration, maintainability, supportability, scalability, security, data dependencies, and lifecycle cost.
  • Establish risk-tiering and review criteria so governance depth is proportionate to intended use, affected users, data sensitivity, autonomy, operational impact, and potential harm.
  • Translate VA and federal policy, responsible-AI expectations, cybersecurity/privacy requirements, and enterprise standards into practical architecture requirements, controls, and decision criteria.
  • Review higher-risk AI, data, clinical, identity, automation, and workflow use cases and identify when additional validation, formal escalation, or executive decision is required.
  • Shape major technical tradeoffs across applications, APIs/integration, data, cloud/platform, identity, low-code, automation, and AI-enabled solution patterns.
  • Define non-functional requirements covering interoperability, data protection, identity, logging/auditability, observability, resilience, accessibility, human oversight, monitoring, and operational support.
  • Maintain architecture decision records, governance assessments, assumptions, approvals, exceptions, risk treatments, accountable owners, and unresolved questions for traceability.
  • Develop reusable reference architectures, governance checklists, technical patterns, review templates, and decision guidance that accelerate future VA initiatives.
  • Facilitate architecture and governance reviews that produce clear decisions, owners, actions, and escalation paths rather than unresolved technical debate.
  • Partner with cybersecurity/privacy, data, clinical informatics, HCD, platform, engineering, testing, and program leadership to resolve cross-cutting constraints and right-size controls.
  • Assess technical debt, vendor lock-in, sustainment, operational ownership, model/system change, and post-deployment monitoring before major decisions are finalized.
  • Support implementation and readiness reviews to confirm material architecture and governance assumptions remain valid as solutions move from design into pilot, deployment, or scale.
  • Track recurring architecture and governance findings and recommend shared services, reference patterns, standards, or portfolio-level improvements that reduce one-off solution design.
Qualifications
  • Bachelor's degree in computer science, information systems, engineering, cybersecurity, data science, public policy, risk management, or a related field; equivalent professional experience may be considered.
  • 10+ years of progressive experience across enterprise/solution architecture, systems design, cybersecurity or technology risk, technical consulting, AI governance, or related modernization work.
  • Demonstrated solution-architecture depth across applications, APIs/integration, data, cloud/platform, identity, security, networking, and operational support, including lifecycle tradeoffs.
  • Demonstrated experience operationalizing technology or AI governance through risk tiers, review criteria, control libraries, decision records, approval processes, or lifecycle governance.
  • Strong working knowledge of AI/ML and generative-AI lifecycle concepts, data quality, model/product limitations, human oversight, transparency, privacy, security, and post-deployment monitoring.
  • Proven ability to translate policy, regulatory guidance, enterprise standards, and risk requirements into practical technical controls and architecture decisions.
  • Experience assessing cloud, SaaS, low-code, custom-development, integration, and data-platform options for interoperability, supportability, security, maintainability, and enterprise fit.
  • Experience in federal or regulated environments where identity, authorization, records, accessibility, privacy, security, and operational approval constraints materially affect technical design.
  • Strong executive and technical communication skills, including architecture diagrams, option analysis, decision records, risk narratives, and concise documentation of assumptions and limitations.
  • Recommended certification: TOGAF, Azure Solutions Architect Expert, AWS Solutions Architect Professional, or comparable architecture/cloud credential.
  • Ability to satisfy VA personnel vetting and applicable security, privacy, records, training, and data-handling requirements.
Desired Qualifications
  • 12+ years in federal or regulated enterprise architecture, technology/AI governance, cybersecurity risk, or large-scale modernization.
  • Prior VA, VHA, VA OIT, federal health, or other large federal-enterprise experience with shared platforms, data, identity, and approval processes.
  • Experience with NIST AI risk-management concepts, federal responsible-AI practices, model risk management, algorithmic impact assessment, AI assurance, validation, or high-impact automated decision support.
  • Experience establishing reusable architecture standards, reference patterns, shared controls, or technical governance practices across a portfolio.
  • Experience with Zero Trust, cloud-native architecture, enterprise identity, APIs, data integration, Microsoft Azure/Power Platform, observability, secure software delivery, or AI services in regulated environments.
  • Additional IAPP AIGP, CISSP/CCSP, CISM/CRISC, privacy, or advanced cloud/security architecture certifications are preferred.

Target salary range: $185,000-$225,000

Disclaimer: The salary range displayed represents the typical salary range for this position and is not a guarantee of compensation. Individual salaries are determined by various factors including, but not limited to location, internal equity, business considerations, client contract requirements, and candidate qualifications, such as education, experience, skills, and security clearances.

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Job Locations

US-VA-Tysons | US-DC-Washington, DC

LMI is an Equal Opportunity Employer. LMI is committed to the fair treatment of all and to our policy of providing applicants and employees with equal employment opportunities. LMI recruits, hires, trains, and promotes people without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, pregnancy, disability, age, protected veteran status, citizenship status, genetic information, or any other characteristic protected by applicable federal, state, or local law. If you are a person with a disability needing assistance with the application process, please contact accommodations@lmi.org

Colorado Residents: In any materials you submit, you may redact or remove age-identifying information such as age, date of birth, or dates of school attendance or graduation. You will not be penalized for redacting or removing this information.

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