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AI Agent Developer

Capgemini

Salary: Not Disclosed
Charlotte, NC, USA
Developer
Posted on September 21, 2025Expires on March 21, 2026

The Story Behind the Role

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We are seeking an AI Agent Developer to design, build, and scale agentic AI solutions that accelerate the Software Development Lifecycle (SDLC) for the financial services industry. This role focuses on creating intelligent agents that automate requirement analysis, coding, testing, observability, and DevSecOps workflows across Python, .NET, Angular, and enterprise-scale platforms.

Your Role

  • AI Agent Development: Design and implement AI agents for requirement analysis, user story generation, and documentation. Build coding and DevSecOps agents to automate design, code generation, unit testing, and security checks. Develop validation agents for test case generation, automation scripts, and synthetic test data.
  • Enterprise Integration: Integrate LLMs into CI/CD pipelines, SDLC toolchains, and enterprise workflows. Deploy agents across multi-language environments (Python, .NET, Angular) and develop reusable workflows.
  • Collaboration & Adoption: Partner with developers, DevOps teams, and business stakeholders to gather requirements. Drive organization-wide adoption of intelligent agents, ensuring governance and monitoring.

Your Skills and Experience

  • Strong expertise in AI Agent Development (LangChain, AutoGen, CrewAI, or similar).
  • Proficiency in LLMs integration for automation across SDLC phases.
  • Ability to design and build observability and AIOps agents.
  • Experience in prompt engineering, workflow orchestration, and self-healing systems.
  • Proven track record in integrating automation into enterprise SDLC pipelines.
  • Strong client-facing skills: requirements gathering, solution demonstration, and executive presentations.

Secondary Skills

  • Hands-on with CI/CD tools (GitHub Actions, Octopus).
  • Experience with cloud platforms (AWS, Azure) and container orchestration (Kubernetes, OpenShift).
  • Knowledge of software testing frameworks and QA automation tools.
  • Familiarity with observability platforms (Dynatrace, Splunk, ELK).
  • Understanding of enterprise security, governance, and risk management in AI adoption.
AIAgent DevelopmentSDLCLangChainPythonFinServ

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