Senior Automation and AI Developer

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profile Job Location:

Delhi - India

profile Monthly Salary: Not Disclosed
Posted on: 20 hours ago
Vacancies: 1 Vacancy

Job Summary

At EY were all in to shape your future with confidence.

Well help you succeed in a globally connected powerhouse of diverse teams and take your career wherever you want it to go.

Join EY and help to build a better working world.

EY Job Description

Job Title:AI Engineer - Agentic AI Orchestration & Azure AI Foundry (FullStack AzureNative)

Job Rank (must note a single rank only for each job description):Supervising Associate

Function:EY Technology Enterprise Technology

Scope (indicate either global/cross-border or local/country):Global

Sub Function:EY Technology CBS Technology Intelligent Automation

Reports to (Job Title):AI Engineering Lead

Job Summary:

The AI Engineer is responsible for building deploying and operating production-grade AI and Agentic AI solutions across the enterprise. This is a hands-on engineering role focused on implementing LLM-powered applications orchestration and multi-agent workflows and secure API-driven integrations using Azure AI Foundry and Azure-native services (compute storage messaging data security and observability).

The role works across the full AI lifecyclefrom system design and development to production operationsensuring solutions are secure scalable observable and governed. The AI Engineer partners closely with Engineering Leads architects data science teams and platform/security stakeholders to translate AI use cases into reliable enterprise ready systems not isolated proofs of concept.

A key expectation of the role is to embed evaluation quality monitoring and runtime security into AI systems including the use of LLM as a Judge patterns and alignment to agent lifecycle governance and runtime protection controls (e.g. Agent 365aligned environments).

Essential Functions of the Job:

  • Build Agentic AI Solutions using Azure AI Foundry (Core): Build and evolve AI applications and agents leveraging Azure AI Foundry-aligned capabilities used in the enterprise toolchain
  • Develop Orchestration & Multi Agent Systems (Core): Implement orchestration layers to coordinate tools/agents across multi-step tasks including multi-agent workflows for specialized sub-tasks and coordinated execution.
  • Full Stack Engineering API Development (Core): Build end-to-end AI experiences (UI where applicable) backend services and integration layers. Design and implement RESTful APIs and microservices that expose AI/agent capabilities securely and reliably.
  • Serverless & Asynchronous Processing with Azure Functions (Core): Build services using Azure Functions including Durable Functions (or equivalent) for long-running and stateful orchestration patterns.
  • Messaging / Queues for Workflow Reliability (Core): Use queue/event-driven patterns (e.g. messaging pub/sub) to decouple services and improve reliability of multi-step AI pipelines and orchestration flows.
  • Data Engineering Foundations: ADLS Retrieval (Core): Work with ADLS-style data lake patterns for ingestion storage and processing to support AI workloads and grounding.
  • Use Azure Cognitive Services / Azure AI Services Where Appropriate (Core: Leverage Azure Cognitive Services / Azure AI Services capabilities as part of end-to-end AI solutions.
  • Vector Databases & Knowledge Stores (Core): Implement vector retrieval using enterprise options such as Azure AI Search and/or other vector DB patterns (e.g. Cosmos DB / PostgreSQL pgvector / Redis) based on operational needs.
  • Continuous Evaluation using LLM-as-a-Judge (Core): Implement evaluation pipelines for LLM/agent outputs including LLM-as-a-Judge patterns and structured scoring/assessment approaches where appropriate.
  • Agent Lifecycle Governance with Agent 365 (A365) Awareness (Core): Build solutions that align with enterprise lifecycle management and governance patterns such as:
    • Agent registry / inventory expectations
    • Access controls and telemetry/observability requirements
    • Monitoring and operational controls at agent scale
  • Runtime Security / Runtime Protection (Core): Implement and support runtime protection expectations for agentic solutions and participate in controls aligned to:
    • Runtime protection
    • Access controls (e.g. Entra ID patterns)
    • Threat detection and monitoring expectations

Analytical/Decision Making Responsibilities:

This role is critical to ensuring the enterprises AI ambition translates into real reliable and scalable systemsnot just innovation theater. You will define how AI is built shipped and operated across the organization.

Knowledge and Skills Requirements:

  • Core Software Engineering (Required)
    • Strong hands-on development in Python / C# / TypeScript/JavaScript (or similar).
    • Experience building API-driven services and integrating distributed systems. Build agen...65 Copilot SharePoint Agents in...65 Copilot SharePoint
    • Strong understanding of non-functional requirements: reliability availability scalability performance and cost.
  • Azure & Platform Engineering
    • Hands on experience with Azure AI Foundry for delivering enterprise GenAI solutions in an enterprise context.
    • Experience building serverless and asynchronous workloads using Azure Functions (including Durable Functions or equivalent).
    • Experience using queues and event driven messaging for decoupled reliable workflows.
    • Experience working with ADLS for data ingestion storage and processing.
    • Experience using Azure Cognitive Services / Azure AI Services as part of AI solutions.
  • Azure Functions Queues/Eventing (Required)
    • Experience with Azure Functions (including Durable Functions or equivalent orchestration patterns).
    • Experience implementing asynchronous patterns with queues/eventing for scale and reliability.
  • Vector Databases (Required)
    • Hands-on experience with vector databases / vector search including enterprise deployment patterns
  • LLM-as-a-Judge Evaluation (Required)
    • Experience implementing evaluation approaches that include LLM-as-a-Judge (or equivalent automated evaluation patterns) for quality monitoring and continuous improvement.
  • Agent 365 (A365) Governance Alignment (Required)
    • Familiarity/experience working in environments using Agent 365 (A365)-style lifecycle management concepts (e.g. agent registry governance monitoring/observability and access controls)
  • Runtime Security / Runtime Protection (Required)
    • Experience delivering solutions with runtime protection expectations (runtime security controls access controls and monitoring alignment as defined by enterprise governance).

Nice to Have

  • Experience integrating AI services into enterprise automation platforms (e.g. Power Platform ServiceNow).
  • Familiarity with Azure AI services and data platforms.

Detailed Responsibilities:

  • AI & Agentic Solution Engineering
    • Build and evolve AI applications and agents using Azure AI Foundry and Azure native services.
    • Design and implement multi agent workflows and orchestration logic for complex use cases.
    • Integrate AI capabilities into enterprise systems through secure APIs.
  • Full Stack & Backend Development
    • Develop backend services APIs and supporting components for AI solutions.
    • Build full stack solutions where required including UI integration for AI experiences.
    • Implement serverless components using Azure Functions for scalable event driven execution.
  • Data Retrieval & Knowledge Systems
    • Design and implement data ingestion and storage pipelines using ADLS.
    • Build and operate vector based retrieval systems for AI grounding and search.
    • Maintain data freshness indexing strategies and retrieval performance.
  • Evaluation Monitoring & Quality
    • Implement evaluation pipelines for AI outputs including LLM as a Judgebased scoring and analysis.
    • Instrument AI systems with logging metrics and telemetry to support observability and diagnostics.
    • Use evaluation insights to improve accuracy consistency and system behavior over time.
  • Security Governance & Operations
    • Build AI systems aligned to runtime security and governance expectations including access controls and monitoring.
    • Operate and support AI solutions in production including incident response and root cause analysis.
    • Continuously improve system reliability performance and cost efficiency.

Job Requirements:

Education:

  • A degree in Computer Science / Engineering or a related discipline; or equivalent work experience

Experience:

  • 10 years in a Global IT environment working with multiple disciplines to deliver projects in line with customer needs
  • 3 Years Global delivery or transformation preferably in large scale infrastructure programs
  • 3 Years in a global operations environment

Certification Requirements:

  • Python Certification
  • Azure AI Services
  • Azure Data Services

EY Building a better working world

EY is building a better working world by creating new value for clients people society and the planet while building trust in capital markets.

Enabled by data AI and advanced technology EY teams help clients shape the future with confidence and develop answers for the most pressing issues of today and tomorrow.

EY teams work across a full spectrum of services in assurance consulting tax strategy and transactions. Fueled by sector insights a globally connected multi-disciplinary network and diverse ecosystem partners EY teams can provide services in more than 150 countries and territories.


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