Principal AI Software Engineering Lead

3Core Systems

  • Irving, Texas
  • 7 days ago

    Highlights

    Experience Desired : AI-Assisted Software Engineering & Developer Productivity (7 yrs); Backend/Platform Engineering (7 yrs); Backend/Platform Engineering (7 yrs); Software Architecture & Technical Leadership (7 yrs); Software Architecture & Technical Leadership (7 yrs). • Collaborate with vendors, partners, and stakeholders on emerging capabilities and best practices.

    Numbers & Facts

    LocationIrving, Texas

    Description

    Job Title: Principal AI Software Engineering Lead

    Location: Irving, TX, 75038 (Onsite)

    Duration: 26 months contract

     

    **Preferred locals to TX.

    **Only those lawfully authorized to work in the designated country associated with the position will be considered.

     

    Must Have Skills/Attributes: Cloud, DevOps, Java, Python.

    Experience Desired: AI-Assisted Software Engineering & Developer Productivity (7 yrs); Backend/Platform Engineering (7 yrs); Backend/Platform Engineering (7 yrs); Software Architecture & Technical Leadership (7 yrs); Software Architecture & Technical Leadership (7 yrs)

    Required Minimum Education: Bachelor’s Degree.

    Preferred Education: Master’s Degree.

     

    JOB DESCRIPTION:

    Required Education (Precise):

    •         Bachelor’s degree in Computer Science, Software Engineering, or related field (minimum).

    o Master’s + 3 years

    o Bachelor’s + 5+ years

    o Associate’s + 9 years

    •         Internships not accepted as experience.

     

    Preferred Education:

    •         Master’s degree in Computer Science or Software Engineering (preferred).

     

    Preferred Certification:

    •         TOGAF certification (nice-to-have).

     

    Required Skills:

    •         Cursor, Claude Code, or GitHub Copilot (or similar AI coding tools).

    •         Java/Spring Boot

    •         Python

    •         Distributed systems

    •         APIs and integration services

    •         Cloud-native platforms

    •         Software architecture and engineering best practices

    •         Prompt engineering

    •         Agentic development workflows

    •         Engineering metrics and productivity measurement

    •         Infrastructure and cloud

    •         Docker, containers, Kubernetes

    •         IT security, server/storage

    •         Security standards

    •         DevOps

     

    Technical – Desired:

    •         Specification-driven development.

    •         Robotics, Physical AI, Simulation, or Digital Twin.

    •         AWS or Azure.

    •         Developer experience platforms.

     

    Soft Skills – Required:

    •         Problem-solving and analytical thinking.

    •         Agile/Scrum team collaboration.

    •         Verbal and written communication.

    •         Cross-functional/distributed team collaboration.

    •         Ambiguity tolerance.

    •         Ownership and accountability.

    •         Technical documentation.

     

    Soft Skills – Desired:

    •         Mentoring junior engineers.

    •         Technical leadership and design reviews

    •         Stakeholder management and vendor collaboration.

    •         Continuous improvement.

    •         Global team experience.

     

    Disqualifiers (Red Flags):

    •         No hands-on backend development.

    •         Limited API, integration, or distributed systems experience.

    •         Front-end only experience.

    •         No Agile/Scrum experience.

    •         Cannot contribute to cloud-native service development or troubleshooting.

     

    Key Responsibilities:

    •         Identify cloud capabilities and benchmark industry adaptation.

    •         Assess Kubernetes fit.

    •         Review ICS/ACT technologies (Remote Services, Minestar).

    •         Challenge solutions and drive alternative architecture options.

    •         Partner with GIS, Security, and other teams on solution design.

    •         Evaluate and benchmark AI coding platforms.

    •         Define AI best practices, standards, governance, and adoption frameworks.

    •         Identify and execute AI pilot initiatives (Atlas, Physical AI, enterprise).

    •         Design agentic, spec-driven, and autonomous development workflows.

    •         Measure developer productivity, quality, SDLC efficiency, and outcomes.

    •         Create reference architectures, implementation patterns, and guidance for AI-native development.

    •         Integrate AI into development lifecycle with architects, managers, product, and platform teams.

    •         Assess security, compliance, and governance for AI coding tools.

    •         Mentor teams on AI tools and modern engineering practices.

    •         Drive velocity, quality, technical debt reduction, and developer experience improvements.

    •         Collaborate with vendors, partners, and stakeholders on emerging capabilities and best practices.

    •         Contribute to engineering strategy, roadmap, technology selection, and long-term AI transformation.

    •         Individual contributor.

    •         Collaborate with: Engineering Directors, Managers, Principal Engineers, Architects, Technical Leads.

    •         Work across: Atlas, Physical AI, Autonomy Services, enterprise engineering.

    •         Partner with: Product Owners, Product Managers, business stakeholders.

    •         Partner with: DevOps, Platform Engineering, Cybersecurity, Enterprise Architecture.

    •         Engage with vendors and AI platform providers.

    •         Lead workshops, architecture discussions, PoCs, enablement activities.

    •         Mentor engineers and technical leads.

    •         Present recommendations, findings, pilot results, roadmaps to senior leadership.



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