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AI Platforms Engineer*

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Описание
*AI Platforms Engineer* Experience: 5-7 years Department: Enterprise Data & AI Engineering Reports To: Director of Enterprise AI Platforms & Architecture Position Type: Full-Time Role Overview We are seeking a highly skilled AI Platforms Engineer to drive the integration, scalability, governance, and optimization of enterprise generative AI capabilities across Microsoft Copilot and Google Gemini Enterprise. This role goes beyond tool adoption. The engineer will design secure platform integrations, build custom connectors, enable enterprise data grounding, manage multi-agent workflows, and ensure AI solutions are context-aware, compliant, and aligned with organizational security boundaries. Key Responsibilities 1. Platform Engineering & Architecture Cross-platform orchestration: Design, deploy, and maintain solution architecture for Microsoft Copilot, Copilot Studio, Google Gemini Enterprise, Google Workspace, and Vertex AI. Custom extensibility: Build and maintain enterprise connectors, plugins, and OpenAPI manifests to integrate AI platforms with proprietary databases, ERPs, and legacy systems. Data grounding and retrieval: Design, tune, and scale Retrieval-Augmented Generation pipelines using Microsoft Graph and Google Cloud APIs to deliver accurate, context-aware AI interactions. 2. Automation & Agentic AI Multi-agent workflows: Design and implement autonomous workflows using frameworks such as Semantic Kernel, Azure AI Agent Service, or custom Python-based orchestration layers. Low-code and full-code integration: Connect low-code automations across Power Platform, Power Automate, and Logic Apps with programmatic backend scripts in Python or TypeScript. 3. Governance, Security & Performance Enterprise guardrails: Enforce AI governance, tenant isolation, and Data Loss Prevention policies across Microsoft Purview and Google Workspace administration. Access control: Ensure AI outputs respect enterprise data boundaries, user-level permissions, Microsoft Entra ID, OAuth 2.0, and regional data residency requirements. Optimization and observability: Track AI usage, API latency, response quality, and cost trends while building dashboards in Power BI or Looker to optimize licensing and total cost of ownership. 4. Power Platform Administration Responsible for governing Microsoft Power Platform and M365 environments, including security, DLP policies, ALM, and compliance using Microsoft Purview, with hands-on experience using GitHub and CI/CD pipelines to deploy agents and solutions to production. Ensures scalable, secure, and well-governed automation through standardized environment and release management. 5. MLOps & LLMOps Responsible for operationalizing ML and generative AI solutions across the Azure AI ecosystem, including Azure AI Foundry, Azure Monitor, and Application Insights, with hands-on experience using GitHub for CI/CD-driven deployments. Ensures reliable, compliant, and cost-efficient AI operations through model and prompt lifecycle management, observability, and responsible AI practices. Required Technical Qualifications Enterprise AI tooling: 3+ years of hands-on technical experience with Microsoft Copilot Studio, Power Platform, Google Gemini Enterprise, and Vertex AI. Core engineering: Strong proficiency in Python or TypeScript for building custom plugins, data ingestion scripts, and integrations with LLM APIs. Cloud architecture: Solid understanding of Azure AI Foundry, Azure AI Services, and Google Cloud Platform. Data systems: Experience with graph data, embeddings, vector databases, and enterprise content management platforms such as SharePoint, OneDrive, and Google Drive. DevOps and CI/CD: Experience establishing continuous integration and deployment pipelines for AI agents, prompt configurations, and platform automation. Follow the ML - DS/DA/DE - AI [Jobs, InterviewPrep] 🇮🇳 channel on WhatsApp: [link] *Immediate requirement at bangalore location with Azure AI LLM Python 3-7Yrs of experiences , dm me at [whatsapp]
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