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Inetum

New

AI Engineer- remote

Posted Updated
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Mission

Design, build and deploy enterprise-grade AI solutions, autonomous AI agents, and multi-agent orchestration frameworks that support digital transformation initiatives, with a focus on financial services, anti-financial crime processes, and scalable AI platforms. Contribute to the development of secure, reliable, and production-ready AI capabilities that enable organizations to leverage Generative AI and LLM technologies at scale.

Responsibilities:

  • Architect and develop production-grade autonomous agents and multi-agent orchestration frameworks (e.g., LangChain, AutoGen, CrewAI).
  • Design, build, and deploy AI solutions based on Large Language Models (LLMs) and agentic architectures.
  • Guide technical implementations across multiple parallel squads, ensuring consistent and reusable architectural standards.
  • Integrate LLMs with external APIs, proprietary tools, databases, and enterprise systems to enable advanced tool-calling capabilities.
  • Optimize prompt engineering approaches, context management, state management, and long-running agent workflows.
  • Implement monitoring, logging, evaluation, and observability frameworks for AI applications and autonomous agents.
  • Apply MLOps/AIOps practices, including model versioning, testing, performance evaluation, and monitoring.
  • Design and deploy AI solutions on cloud platforms, primarily AWS, while collaborating on Azure and Databricks environments where applicable.
  • Collaborate with business, data science, engineering, and cloud teams to deliver AI-powered solutions in regulated environments.

Professional Experience

  • 5-10 years of professional experience in AI Engineering, Software Engineering, Machine Learning, or related fields.
  • Experience designing and implementing enterprise AI solutions.
  • Experience building and deploying autonomous AI agents and multi-agent systems.
  • Experience integrating Generative AI and LLM technologies into enterprise applications.

Technical Skills

  • Strong Python development skills.
  • Hands-on experience with AWS, including AWS Bedrock and AgentCore.
  • Experience with AI/LLM integration patterns such as:
    • MCP (Model Context Protocol)
    • A2A (Agent-to-Agent communication)
    • Structured Outputs
    • Skills-based architectures
  • Knowledge of agent orchestration frameworks such as LangChain, AutoGen, CrewAI, or similar.
  • Experience with MLOps/AIOps practices:
    • Versioning
    • Testing
    • Monitoring
    • Evaluation frameworks
  • Experience integrating AI solutions with APIs, databases, and enterprise platforms.

Nice to Have

  • Experience with Azure AI services.
  • Experience with Databricks.
  • Experience in Financial Services, Insurance, AML, KYC, Fraud Prevention, or other regulated industries.

Benefits:

🌍 Full access to foreign language learning platform

💻 Personalized access to tech learning platforms

📈 Tailored workshops and trainings to sustain your growth

🩺 Medical Insurance

🍎 Meal tickets

🌄 Monthly budget to allocate on flexible benefit platform

🏋 Access to 7 Card services

🧘 Wellbeing activities and gatherings

Skills

What Senior AI Engineering jobs ask for — and how much of it you have →

See also

AI Engineering jobs by country — openings, pay and top skills →

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