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GCP Gemini Enterprise Platform Architect

Summary

The GCP Gemini Enterprise Platform Architect will design and implement an enterprise-scale agentic AI platform on Google Cloud, managing infrastructure, security, and AI model integration. The role involves defining technical roadmaps and supporting containerized AI workloads using GKE and GCP's generative AI ecosystem.

We are seeking an experienced GCP Gemini Enterprise Platform Architect to define, build, and support an enterprise-scale agentic AI platform on Google Cloud Platform, driving architecture decisions across infrastructure, security, and AI services while enabling business-critical use cases.

Responsibilities

  • Define the architecture and technical roadmap for an enterprise agentic AI platform on GCP
  • Set up and configure Gemini Enterprise, the Gemini Enterprise Agent Platform, and supporting GCP AI services
  • Design and configure the infrastructure, compute, networking, security, and data layers required for the platform
  • Enable enterprise connectors, integrations, data access, and onboarding of applications and AI agents
  • Establish standards for agent deployment, lifecycle management, monitoring, governance, and access control
  • Architect and support containerized AI workloads using GKE and the associated compute stack
  • Provide technical guidance, proactive service support, and first-level assistance for critical platform incidents
  • Collaborate with business, security, data, and engineering teams to deliver lead qualification and customs and clearance agentic AI use cases

Requirements

  • 13-20 years of experience in software engineering
  • Expertise in architecting enterprise-scale solutions on Google Cloud Platform
  • Proficiency in Gemini Enterprise, Gemini models, Vertex AI, or the broader GCP Generative AI ecosystem
  • Strong knowledge of GCP infrastructure, IAM, networking, security, governance, and observability
  • Experience designing or implementing agentic AI platforms and managing AI agents at scale
  • Strong expertise in GKE, Kubernetes, containers, and cloud-native compute platforms
  • Experience configuring AI platform infrastructure, data layers, connectors, APIs, and enterprise integrations
  • Knowledge of Terraform, CI/CD, MLOps, or LLMOps practices within GCP environments
  • Google Cloud certification such as Professional Cloud Architect, Professional Cloud DevOps Engineer, or Professional Machine Learning Engineer

Nice to have

  • Prior experience with Gemini Enterprise connectors and integrations
  • Background in production support for enterprise AI platforms
  • Familiarity with agentic AI use cases such as lead qualification or customs and clearance

Benefits

Opportunity to work on technical challenges that may impact across geographies

Vast opportunities for self-development: online university, knowledge sharing opportunities globally, learning opportunities through external certifications

Opportunity to share your ideas on international platforms

Sponsored Tech Talks & Hackathons

Unlimited access to LinkedIn learning solutions

Possibility to relocate to any EPAM office for short and long-term projects

Focused individual development

Benefit package:

  • Health benefits
  • Retirement benefits
  • Paid time off
  • Flexible benefits

Forums to explore beyond work passion (CSR, photography, painting, sports, etc.)

See also

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