June 17, 2026

Google Gemini AI Architect

Centraprise Cleveland, Ohio

Job title: Google Gemini AI Architect

Job Location: Cleveland, OH – Onsite (Travel: 25–30% - plants, client workshops, exec reviews)

Job Type: Fulltime

Job Description:

Must Have Technical/Functional Skills

Experience: Requires 6+ years in solutions architecture, AI/ML engineering, or technical consulting. The experience should include at least 1–2+ years focused specifically on LLMs and Generative AI in production.Technical skills: Requires deep knowledge of Vertex AI, Python, Big Query, and Google Kubernetes Engine (GKE), Vector databasesCloud proficiency: Requires strong experience with Google Cloud Platform (GCP) and infrastructure-as-code (Terraform).Certifications: Google Cloud Professional Certifications, such as Professional Cloud Architect or Machine Learning Engineer.Demonstratable experience on GCPVerbal and written communication skillsRoles & Responsibilities

We are looking for an Google Gemini AI Architect with strong manufacturing domain expertise and consulting mindset to help industrial enterprises design, deploy, and scale data and AI platforms across plants and enterprise systemsTravel: 25–30% (plants, client workshops, exec reviews)

Responsibilities

AI architecture and design: Architecting end-to-end Generative AI solutions, including Retrieval-Augmented Generation (RAG) pipelines, multi-agent systems, and prompt engineering strategies.Vertex AI and Gemini integration: Integrating Gemini Pro/Ultra models into enterprise applications, managing fine-tuning, evaluation, and inference optimization.Security and governance: Implementing AI guardrails, ensuring security, data privacy, and compliance within AI workflows (e.g., managing data residency and access controls).Strategic advisory: Acting as a technical advisor to C-level stakeholders, defining roadmaps, ROI, and best practices for adopting Google Gemini Enterprise.Prototyping and development: Leading hands-on development of Proofs of Concept (PoCs) and Minimum Viable Products (MVPs) to validate designs.Innovation and Experimentation

Evaluate and prototype new tools and techniques in autonomous agents, synthetic data generation, multi-modal models, and AI orchestration.Collaborate with product and business teams to conceptualize AI-powered assistants, copilots, and automation flows.Leadership and Mentorship

Provide technical leadership to data scientists, prompt engineers, and AI developers.Promote a culture of innovation, experimentation, and measurable business impact through AI.Generic Managerial Skills, If any

Coordination and collaboration with multiple stakeholdersGuiding and leading the team membersStrong communication skills

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