Why This Role Stands Out
You will be instrumental in developing cutting-edge, production-grade agentic AI systems, gaining invaluable experience with leading LLMs and frameworks like LangGraph and LangChain. This hands-on role is perfect for a mid-senior AI Engineer with a strong Python background and a passion for building scalable, secure AI solutions within an enterprise environment. Apply today to contribute to groundbreaking AI advancements at Nityo Infotech Corporation!
Quick Overview
Job Description
We are hiring for AI Engineer at Santa Clara, CA Onsite
Role: AI Engineer
Location: Santa Clara, CA Onsite
AI Engineer to build and deliver production-grade agentic AI systems for enterprise use. The engineer will develop multi-agent workflows, integrate large language models into existing enterprise systems, and support the deployment and automation needed to run them reliably and securely in production.
This is a hands-on engineering engagement. The work centers on building agents, orchestration logic, and supporting infrastructure that performs under real production workloads, not on proof-of-concept or advisory work.
Scope of Work
- Build AI agents and multi-agent systems using frameworks with LangGraph and LangChain tools.
- Develop and tune prompt engineering workflows across multiple LLMs (GPT, Claude, LLaMA), balancing reliability, cost, and latency.
- Develop REST APIs, WebSocket services, and event-driven pipelines for real-time AI services that remain stable under load.
- Automate testing and releases through Jenkins CI/CD, and maintain code and documentation standards using Git, Jira, and Confluence.
- Deployment of AI Application in enterprise adhering to best practices
- Use AI-augmented development tools such as Claude Code and Codex to accelerate delivery.
- Coordinate with platform, security, and product teams to deliver scalable, secure deployments.
Must-Have Skills
- 3-5 years in Machine Learning, AI, or a related field, with production systems delivered.
- At least 1 year building custom Agentic AI applications
- Strong Python skills and sound modern development practices.
- Hands-on experience with LLMs and prompt engineering across the full application lifecycle.
- Demonstrated experience building AI agents with LangGraph.
- Familiarity with at least one enterprise cloud AI platform for building and deploying agentic applications, such as Azure AI Foundry, AWS Bedrock, or Google Gemini Enterprise, including cloud-native deployment practices.
- Working knowledge of REST APIs, WebSockets, and event-driven systems.
- Proficiency with CI/CD tooling (Jenkins) and version control (Git).
- Fluency with AI-augmented development tools for rapid prototyping.
- Strong written and verbal communication, an analytical approach to problem-solving, and the ability to work independently within a cross-functional team.
- Data layer curations and integration with source system for agentic application
Good-to-Have Skills
- Familiarity with Databricks.
- Exposure to MLOps/LLMOps workflows and application monitoring.
- Knowledge of enterprise security, compliance, and governance for AI systems.
- Familiarity with code and model lifecycle management practices.
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