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Employment Opportunity - AI Platform Engineer

Open 27d

Job Summary

Support the implementation and management of AI platform infrastructure using container technologies and automation tools to enable scalable, secure, and efficient AI/data platform operations.

Responsibilities

  • Support implementation of AIDA’s AI Platform on RE:AI’s IaaS using Red Hat OpenShift or equivalent container platforms to ensure stable and scalable deployment
  • Integrate core platform components including API Gateway, RAG pipelines, agent orchestration, and observability stacks to enable seamless platform functionality
  • Assist in deployment and management of OpenShift clusters (CPU/GPU), including configuring operators, networking, and security settings to maintain cluster health and security
  • Automate platform provisioning and operations using Infrastructure-as-Code (IaC), CI/CD pipelines, and standardized deployment patterns to improve deployment efficiency and consistency
  • Integrate platform capabilities with enterprise infrastructure such as networking, storage, load balancers, and backup systems to ensure robust platform connectivity and data protection
  • Implement platform security controls including IAM/AD, SIEM, NGFW, and EDR aligned with enterprise security standards to safeguard platform integrity
  • Support AI/ML workloads including GenAI, LLM serving, RAG pipelines, and agentic frameworks to optimize AI platform performance
  • Contribute to platform monitoring, logging, performance tuning, and capacity planning to maintain operational excellence and scalability

Required competencies and certifications

  • Bachelor’s degree in Computer Science, Engineering, or a related field
  • Minimum 3 years of experience in platform engineering, cloud-native infrastructure, or AI/data platform roles
  • Hands-on experience with Kubernetes/OpenShift including operators, networking, and security configuration
  • Familiarity with Infrastructure-as-Code (IaC) and DevOps/CI/CD practices
  • Basic understanding of cloud/IaaS networking and security principles

Preferred competencies and qualifications

  • Exposure to AI/ML platform components such as LLMs, RAG, or similar frameworks
  • Red Hat, Kubernetes, or OpenShift certifications

See also