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Capgemini

Founded in 1967, Capgemini is revered as one of the world's leading consulting, technology, and outsourcing agencies. In 2016 alone, the company reported global

Senior AI Engineer

AI EngineerMachine Learning EngineerFull TimeRemoteSeniorCompany Site

Location

United States

Posted

15 days ago

Salary

$122K - $177.4K / year

Seniority

Senior

Bachelor Degree5 yrs expEnglishAirflowAWSCloudDistributed SystemsDockerGraphQLJavaScriptKubernetesMicroservicesPythonTerraformTypeScript

Job Description

• Build and deploy custom model context protocol (MCP) connectors for new and existing services • Design and implement custom agentic workflows using cloud AI platforms • Develop server-side application logic and APIs that integrate AI capabilities with existing enterprise systems • Contribute to the development and maintenance of reusable AI component libraries and shared code infrastructure • Write high-quality code, applying best practices, coding standards, and design patterns for AI systems • Participate in the entire AI solution lifecycle, including requirement gathering, design, development, testing, and deployment, using an agile, iterative process • Participate in code reviews and ensure code quality through effective testing strategies and security validation • Collaborate with infrastructure teams, security teams, developers, designers, testers, project managers, product managers, and project sponsors • Communicate tasking estimation and progress regularly to a development lead and product owner through appropriate tools • Ensure seamless integration with backend systems, cloud services, databases and messaging systems • Team with other developers, fostering a culture of continuous learning and professional growth in AI engineering

Job Requirements

  • At least 5+ years of professional software engineering experience with a focus on Python and TypeScript/JavaScript
  • Proven experience building and deploying production AI systems, custom integrations, and agentic workflows using LLM-based platforms
  • Hands-on experience with Model Context Protocol (MCP) architecture or similar plugin/connector frameworks and workflow orchestration tools (n8n, Airflow, LangGraph) for complex AI pipelines
  • Demonstrated expertise with containerization technologies (Docker, Kubernetes) and cloud-native deployment patterns for scalable AI systems
  • Solid understanding of Amazon Web Services cloud platform including their native AI/ML services, vector databases, graph databases, and observability solutions
  • Experience with RESTful API design, GraphQL, and event-driven architectures across multiple LLM providers (OpenAI, Anthropic, Bedrock, Groq)
  • Experience with advanced prompt engineering techniques and specialized knowledge of ensemble prompting strategies for effectively combining and synthesizing outputs from multiple LLM models
  • Proficient with infrastructure-as-code tools (e.g., terraform)
  • Experience with CI/CD pipelines and automated deployment strategies
  • Familiarity with security best practices for AI systems, including authentication, authorization, logging, and data encryption
  • Strong understanding of microservices architecture and distributed systems
  • Proficient with version control systems (e.g., Git) and effective collaborative development workflows
  • Must be a US Citizen and eligible to obtain and maintain a US Security Clearance.

Benefits

  • Paid Time Off
  • Paid Company Holidays
  • Medical, Dental & Vision Insurance
  • Optional HSA and FSA
  • Base and Voluntary Life Insurance
  • Short Term & Long-Term Disability Insurance
  • 401k Matching
  • Employee Assistance Program

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