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Machine Learning Engineer – Generative AI (LLMs / RAG / Agentic AI)

Cirtec Medical
Abu Dhabi, UAE
Fulltime
8 months ago
PythonTensorFlowPyTorchScikit learnDeep LearningNatural Language Processing (NLP)
Free

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Role Summary

Stellar Technologies is seeking a **Machine Learning Engineer (GenAI)** to design, build, and deploy next-generation AI systems combining **Large Language Models (LLMs)**, **Retrieval-Augmented Generation (RAG)**, and **agentic AI frameworks**.

In this role, you will bridge model development and production engineering — developing scalable AI pipelines, integrating real-time APIs, and ensuring high-performance AI services that power enterprise-grade solutions.

You will work at the intersection of machine learning, cloud infrastructure, and applied research, collaborating with top engineers and data scientists to deliver intelligent, production-ready AI capabilities.

Key Responsibilities

  • Develop and optimize AI systems leveraging **LLMs, RAG, and agentic AI frameworks** (LangChain, LangGraph).
  • Build and deploy **production-grade ML pipelines** with real-time inference and retrieval components.
  • Design and manage APIs and streaming services to integrate AI models into enterprise platforms.
  • Implement containerized, orchestrated deployments using **Docker, Kubernetes, and Azure ML**.
  • Automate data preprocessing, model training, evaluation, and versioning pipelines.
  • Collaborate with cross-functional teams to integrate models into front-end, analytics, and automation workflows.
  • Ensure governance, compliance, and security of deployed AI workloads.
  • Conduct performance benchmarking and optimize inference latency and cost.
  • Monitor AI systems in production using observability frameworks (logging, metrics, tracing).
  • Participate in architecture discussions to enhance scalability and reliability of AI services.

Required Skills & Experience

  • Strong hands-on experience with **LLMs, RAG, and agentic frameworks** (LangChain, LangGraph, Semantic Kernel, etc.).
  • Proficiency in **Python**, with deep understanding of ML libraries like **PyTorch, TensorFlow, scikit-learn, Hugging Face Transformers**.
  • Solid experience in **API and microservices engineering** (FastAPI, Flask).
  • Familiarity with **streaming architectures** and real-time data handling.
  • Knowledge of **cloud platforms (Azure preferred)**, including Azure AI, Cognitive Services, and ML Ops.
  • Experience with **containerization and orchestration** (Docker, Kubernetes).
  • Understanding of **vector databases** (Pinecone, Weaviate, FAISS) and retrieval mechanisms.
  • Experience in CI/CD, model deployment, and production monitoring.

Preferred Skills

  • Exposure to **GPU-based inference optimization** and **serverless deployment**.
  • Knowledge of **observability and monitoring tools** for AI (Prometheus, Grafana, Azure Monitor).
  • Experience in **model fine-tuning**, **prompt engineering**, or **agentic orchestration**.
  • Understanding of **AI governance, ethical AI, and data privacy** frameworks.

Soft Skills

  • Strong analytical and problem-solving mindset.
  • Excellent collaboration and communication skills.
  • Passion for innovation, experimentation, and applied AI.

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