AI Platform Engineer

Confidencialrole — United Arab Emirates · Posted ~1 hour ago

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Skills

AI infrastructure platform engineering model serving inference platforms MLOps LLMOps Azure automation security reliability

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Summary ✨ AI‑Generated

A newly established financial organization in the UAE is building enterprise AI capabilities from the ground up and is seeking an AI Platform Engineer. You will build and operate model-serving and inference infrastructure, develop MLOps and LLMOps capabilities, and create secure, reliable automation across cloud environments. Close collaboration with AI, data, architecture, and security teams is central to the role.

Highlights

Help build the AI infrastructure of a new digital-first financial organization from an early stage. The role offers broad ownership across model serving, inference, MLOps/LLMOps, cloud infrastructure, automation, security, and scalable enterprise AI deployment.

Description

We're excited to be partnering with a leading institution in the UAE that is building a digital-first, AI-enabled financial services organisation from the ground up. This is a unique opportunity to join at an early stage and help shape the technology, data, and AI foundations of a business with significant institutional backing and long-term ambition. If you're passionate about AI infrastructure, platform engineering, and building enterprise-scale AI capabilities, we'd love to hear from you. As an AI Platform Engineer, you'll play a key role in building and operating the platform that powers the bank's AI ecosystem. Working closely with AI Engineers, Data Engineering, Architecture, and Security teams, you'll create the infrastructure, automation, and self-service capabilities that enable AI solutions to be deployed securely, reliably, and at scale. Responsibilities • Build and operate model-serving infrastructure, inference platforms, and MLOps/LLMOps capabilities across Azure and AWS. • Develop and maintain AI platform services including agent runtimes, LLM gateways, vector stores, and orchestration infrastructure. • Implement Infrastructure as Code, CI/CD pipelines, and deployment automation using Terraform, Helm, and GitOps. • Build secure AI infrastructure with identity management, network isolation, secrets management, and governance controls. • Provide observability, monitoring, scaling, and disaster recovery capabilities for AI workloads. • Optimise GPU utilisation, inference workloads, and AI platform costs while maintaining reliability and performance. Requirements • 6+ years of experience in Platform Engineering, DevOps, MLOps, Infrastructure Engineering, or Site Reliability Engineering. • Strong hands-on experience operating cloud infrastructure across Azure and/or AWS environments. • Deep expertise with Kubernetes, Docker, Terraform, Infrastructure as Code, and CI/CD automation. • Experience operating AI/ML platforms such as Databricks, MLflow, model-serving infrastructure, or GPU environments. • Familiarity with LLM platforms, vector databases, AI gateways, agent frameworks, or related AI infrastructure technologies. • Experience working within banking, fintech, or another highly regulated environment is advantageous. Ready to join us? Apply today and take the next step in your career.