Senior Engineer - Google Agentic AI (ADK, Agent Development & Deployment

Recutify Inc.
United States
24 days ago

Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Experience required
3 years minimum
Working hours
Regular working hours
Job source

Tech stack

Application Programming Interfaces (APIs) Artificial Intelligence Confluence JIRA BigQuery Software as a Service Cloud Computing Continuous Integration Data Integration Memory Management Github Graph Database
+29 more
Identity and Access Management Python (Programming Language) Machine Learning Performance Tuning Salesforce.Com Search Technologies Microsoft SharePoint Software Deployment Software Engineering Strategies of Testing Data Logging Google Cloud Enterprise Software Applications Large Language Models Multi-Agent Systems Prompt Engineering Generative AI Web Filtering Event Driven Architecture Kubernetes Information Technology Machine Learning Operations Virtual Agents Software Coding Restful APIs Terraform Api Management Docker Servicenow

Job description

We are seeking a highly skilled Google Agentic AI Engineer to design, develop, deploy, and operate enterprise-grade AI agents using Google Agent Development Kit (ADK), Vertex AI Agent Builder, Gemini Models, and Google Cloud Platform (GCP). The candidate will be responsible for building intelligent, scalable, secure, and production-ready multi-agent systems that integrate with enterprise applications, APIs, and knowledge repositories., Agent Development

  • Design and develop AI agents using Google ADK.
  • Build autonomous and multi-agent workflows leveraging Gemini models.
  • Implement agent orchestration, memory management, session handling, and tool integrations.
  • Develop custom tools, function calling mechanisms, and API integrations for enterprise use cases.
  • Design agent collaboration patterns using A2A and MCP standards.
  • Build reusable agent templates and frameworks to accelerate solution delivery.

Agent Deployment & Operations

  • Deploy agents using Vertex AI Agent Builder and Agent Engine.
  • Build scalable production deployments on GCP services including Cloud Run, GKE, and Vertex AI.
  • Implement agent observability, monitoring, tracing, logging, and performance optimization.
  • Define SLIs, SLOs, and operational dashboards for AI workloads.
  • Support production operations, incident management, and continuous improvement initiatives.

Enterprise AI Solutions

  • Develop RAG solutions by leveraging Vertex AI Search, Vector Search, and enterprise knowledge sources.
  • Integrate agents with enterprise systems such as Salesforce, ServiceNow, SharePoint, Jira, Confluence, and custom APIs.
  • Implement context engineering, knowledge graph integration, and enterprise grounding techniques.
  • Build workflow automation agents, diagnostic agents, customer support assistants, and operational bots.

Security, Governance & Compliance

  • Design secure AI architectures following enterprise governance standards.
  • Implement guardrails, content filtering, hallucination detection, DLP, access control, and identity management.
  • Ensure compliance with enterprise security, privacy, and regulatory requirements.
  • Drive AI governance, monitoring, risk management, and responsible AI practices.

Engineering Excellence

  • Establish coding standards, evaluation frameworks, and testing strategies for AI agents.
  • Mentor engineering teams on Agentic AI architecture and development best practices.
  • Conduct architecture reviews and technical assessments.
  • Stay current with advancements in Agentic AI, LLMs, ADK, MCP, A2A, LangGraph, CrewAI, and related ecosystems.

Mandatory Skills

Google Agentic AI

  • Strong hands-on experience with:
  • Google Agent Development Kit (ADK)
  • Vertex AI
  • Vertex AI Agent Builder
  • Agent Engine
  • Gemini Models
  • Gemini API
  • Multi-Agent Systems
  • Agent Orchestration
  • Agent Memory & Sessions
  • Tool Calling and Function Calling

AI/LLM Engineering

  • Prompt Engineering
  • RAG Architecture
  • Vector Databases
  • Knowledge Graphs
  • Agent Evaluation Frameworks
  • LLM Fine-Tuning and Optimization
  • AI Observability and Monitoring

Cloud & Development

  • Google Cloud Platform (GCP)
  • Python
  • REST APIs
  • Kubernetes (GKE)
  • Cloud Run
  • Docker
  • GitHub Actions / CI-CD
  • Infrastructure as Code (Terraform preferred)

Data & Integration

  • BigQuery
  • Vertex AI Search
  • Vector Search
  • Enterprise API Integration
  • MCP and A2A Protocols

Preferred Skills

  • LangGraph
  • LangChain
  • CrewAI
  • LlamaIndex
  • OpenAI / Anthropic / Gemini ecosystems
  • AI Security & Governance
  • MLOps / LLMOps
  • Event-driven architecture
  • Real-time AI applications
  • Enterprise SaaS integrations
  • AI Cost Optimization

Requirements

  • Bachelor’s or master’s degree in computer science, Engineering, AI, Data Science, or related field.
  • 10 15 years of software engineering experience.
  • Minimum 2 3 years of hands-on experience building GenAI, Agentic AI, or LLM-based solutions.
  • Google Cloud certifications preferred:
  • Professional Cloud Architect
  • Professional Machine Learning Engineer
  • Generative AI Leader/Engineer Certifications

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