AI Engineer
Job in
Abu Dhabi, UAE/Dubai
Listed on 2026-09-30
Listing for:
Cognitive
Full Time
position Listed on 2026-09-30
Job specializations:
-
Software Development
AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Data Engineering
Job Description & How to Apply Below
You will be designing, developing and deploying scalable generative AI solutions while managing and maintaining LLM deployments for internal AI tools, ensuring high availability and efficiency for internal teams, and training and deploying deep learning and LLMs models to production.
Responsibilities- Design and implement robust RAG pipelines to integrate Large Language Models (LLMs) with proprietary data sources, ensuring high accuracy and low latency in responses.
- Architect and maintain complex Apache Airflow DAGs to automate data ingestion, cleaning, embedding generation, and model retraining workflows.
- Manage and optimize Vector Databases (e.g., Pinecone, Milvus, Weaviate) for efficient storage and retrieval of high-dimensional embeddings.
- Maintain and monitor internal LLM deployments (hosting, scaling, and versioning), ensuring 99% uptime, managing GPU resources and optimizing inference for internal AI usage.
- Train, fine-tune, and deploy deep learning and LLM models to production environments, managing the full MLOps lifecycle from experimentation to serving.
- At least Bachelor's Degree in Computer Science, Software Engineering, Data Science, AI or related field
- 8+ years in Software Engineering overall
- Solid experience in building LLM applications and RAG pipelines, in production
- Production experience with Python and DBs.
- Open-source contributions to AI/MLOps libraries.
- Good foundation in linear algebra and statistics.
- Programming:
Python (Must), Java (nice to have: GO, Scala) - GenAI and LLMs: RAG, Lang Chain, Llama Index, RAG pipeline design. Nice to have: PEFT/LoRA fine-tuning.
- Data Processing:
Apache Airflow, DAGs. Nice to have:
PySpark or Ray. - Databases:
Vector DBs (Pinecone/Milvus), SQL/No
SQL, embedding models and semantic search - MLOps:
Docker, Kubernetes, vLLM, Cloud (AWS/Azure/GCP), CI/CD pipelines. Nice to have: GPU resource management and optimization (CUDA).
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