Posted on: 07/11/2025
Description :
Job Summary :
Drive cutting-edge research and development in autonomous AI agents, Agentic AI, and GenAI systems to power next-gen airline solutions.
Key Responsibilities :
- Design, develop, and deploy autonomous AI agents using Agentic AI frameworks.
- Build and optimize multi-agent collaboration protocols (MCP, A2A) for scalable decision-making systems.
- Fine-tune large language models (LLMs) for domain-specific airline use cases.
- Architect and implement GenAI solutions for operational and customer-facing applications.
- Conduct experiments and benchmarking for model performance and reliability.
- Collaborate with engineering teams to integrate AI models into cloud-native environments (Azure/GCP).
- Publish findings, contribute to patents, and represent the lab in external forums and conferences.
Required Skills / Must-Have :
- Technical Skills : Python, PyTorch/TensorFlow, LangChain, FastAPI, Azure ML or Vertex AI, Docker/Kubernetes.
- AI/ML Expertise : Autonomous agents, Agentic AI, LLM fine-tuning, GenAI pipelines.
- Protocols : MCP (Multi-agent Collaboration Protocol), A2A (Agent-to-Agent Communication).
- Cloud Platforms : Azure or GCP (hands-on experience).
- Experience : 2 to 5 years in applied AI/ML, preferably in innovation or R&D settings.
Nice-to-Have / Preferred Skills :
- Experience with airline industry datasets or operational systems.
- Familiarity with Reinforcement Learning (RL) and multi-agent systems.
- Knowledge of MLOps practices and CI/CD for ML workflows.
- Contributions to open-source AI projects or publications in top-tier conferences.
Education & Qualifications :
- Primary : Bachelors in Engineering or Mathematics with strong AI/ML experience.
- Secondary : Masters or PhD in Computer Science, AI/ML, Data Science, or related field.
Certifications/Licenses :
- Preferred : Azure AI Engineer Associate, Google Cloud ML Engineer, TensorFlow Developer Certificate.
Skills Grouping & Synonyms :
- AI/ML : Autonomous agents / Agentic AI / multi-agent systems / GenAI / LLM fine-tuning.
- Cloud : Azure ML / GCP Vertex AI / cloud-native ML / MLOps.
Protocols : MCP / multi-agent collaboration / A2A / agent communication.
Development : Python / FastAPI / LangChain / PyTorch / TensorFlow.
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