AI Engineer

Job Description

Looking for an AI engineer to develop, deploy, and operate AI/LLM models across clients' dual environment — GCP for public-cloud workloads, Humain sovereign cloud for classified data.

Requirements

  • Build and fine-tune LLM/ML models for Arabic NLP, document classification, vision/OCR, and AIOps use cases.
  • Run pre-deployment evaluation including accuracy baselines, regression, and safety testing; provide evidence to justify GPU allocation.
  • Optimize inference — quantization, batching, context sizing — against measured usage.
  • Deploy on Humain GPUaaS: Kubernetes, GPU partitioning on B300 nodes, quotas, RBAC.
  • Build equivalent workloads on GCP (Vertex AI, GKE) with classification-based routing.
  • Own serving stack (vLLM/TGI), model versioning, CI/CD, and monitoring for latency, tokens, GPU utilization, and drift.
  • Ensure developed AI models comply with ZATCA data sovereignty and SDAIA requirements (AI ethics, GenAI guidelines, PDPL).

Benefits

  • 5 years of ML/AI engineering experience, including production LLM deployment.
  • Proficiency in Python, PyTorch, Hugging Face.
  • Kubernetes in production; GPU-served inference.
  • Experience with GCP Vertex AI or any equivalent cloud platform.

See also

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