Sr AI Developer

Omega Solutions Inc

Sunnyvale (CA)

On-site

USD 180,000 - 240,000

Full time

2 days ago
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Job summary

Omega Solutions Inc. is seeking an experienced AI Platform Engineer to design, build, and maintain agentic AI workflows in production, leveraging AWS Bedrock and enterprise data sources.

You will implement multi‑step reasoning, RAG strategies, and secure governance controls while collaborating with hardware engineers and cross‑functional teams to shape the platform roadmap.

Qualifications

  • Proven hands-on experience building production‑grade agentic AI systems.
  • Hands-on experience with AWS Bedrock or comparable cloud AI platforms.
  • Experience building Retrieval-Augmented Generation (RAG) systems with embeddings and vector databases.
  • Experience implementing multi-step reasoning, tool usage, and autonomous task execution.
  • Familiarity with Model Context Protocol (MCP) and integrating external tools into AI workflows.
  • Experience designing evaluation frameworks and validation mechanisms for AI systems.

Responsibilities

  • Design, build, and maintain production‑grade agentic AI workflows using modern frameworks.
  • Develop AI systems that combine enterprise knowledge and internal data sources.
  • Implement multi‑step reasoning, tool usage, and autonomous task execution within workflows.
  • Design prompts, architectures, and evaluation frameworks to maximize AI performance.

Skills

Python
Backend development
CI/CD pipelines
AI workflow development
AWS Bedrock
RAG systems

Tools

LangChain
LangGraph
LlamaIndex
Hugging Face
AWS CDK

Job description

Day-to-Day Responsibilities:
Agentic AI Platform Development
  • Design, build, and maintain production-grade agentic AI workflows using AWS Bedrock and modern AI frameworks.
  • Develop AI systems that combine enterprise knowledge, engineering documentation, and internal data sources to support hardware engineering workflows.
  • Implement multi-step reasoning, tool usage, and autonomous task execution within agentic workflows.
  • Design and optimize prompts, agent architectures, and evaluation frameworks to maximize AI performance and accuracy.
RAG & Knowledge Systems
  • Build and maintain Retrieval-Augmented Generation (RAG) solutions using embeddings, vector databases, and knowledge bases.
  • Develop data ingestion, transformation, and indexing pipelines for engineering documentation, design artifacts, and technical datasets.
  • Design retrieval strategies across structured and unstructured data sources, including graph and search-based retrieval systems.
  • Continuously improve retrieval quality, ranking, and response accuracy.
Engineering Productivity & Stakeholder Engagement
  • Partner with hardware engineers, data owners, and cross-functional stakeholders to identify productivity opportunities and prioritize features.
  • Gather feedback from engineering users and incorporate findings into future platform enhancements.
  • Help define product direction, roadmap priorities, and long-term architecture for the AI platform.
  • Serve as a technical leader, helping break down complex initiatives into executable workstreams.
Platform Reliability, Security & Operations
  • Implement Human-in-the-Loop (HIL) workflows, validation mechanisms, and governance controls.
  • Design secure AI systems using enterprise security best practices, including IAM, encryption, audit logging, and data protection controls.
  • Build scalable backend services, APIs, and microservices supporting AI workflows.
  • Debug, test, monitor, and optimize deployed AI solutions for performance, reliability, and cost efficiency.
  • Support CI/CD pipelines and production deployment processes for AI applications.
Required Qualifications:
Core AI & Agentic Development Experience
  • Proven experience building and deploying production-grade agentic AI systems.
  • Strong hands-on experience with AI workflow development using AWS Bedrock or comparable cloud AI platforms.
  • Experience building Retrieval-Augmented Generation (RAG) systems using embeddings, vector databases, and enterprise knowledge sources.
  • Experience implementing agentic workflows, multi-step reasoning, tool usage, and autonomous task execution.
  • Familiarity with Model Context Protocol (MCP) and integrating external tools and data sources into AI workflows.
  • Experience designing evaluation frameworks and validation mechanisms for AI systems.
Software Engineering & Backend Development
  • Strong Python development skills.
  • Experience building backend services, APIs, and microservices.
  • Experience with Flask or similar Python web frameworks.
  • Strong understanding of software engineering best practices, testing, debugging, and code quality.
  • Experience working with CI/CD pipelines and modern software delivery processes.
Cloud & Data Engineering
  • Experience with cloud-native application development in AWS or similar cloud environments.
  • Experience building data ingestion, transformation, and indexing pipelines.
  • Knowledge of AWS services including: Bedrock, Lambda, Step Functions, EventBridge, S3, DynamoDB, Kendra, Neptune (or similar graph databases)
  • Experience designing graph-enhanced or hybrid RAG architectures.
Security & Governance
  • Experience implementing Human-in-the-Loop (HIL) workflows and AI governance controls.
  • Understanding of secure AI system design, including:
    • IAM and least-privilege access
    • Encryption and key management
    • Audit logging
    • Data protection and PII handling
  • Experience designing reliable distributed systems and asynchronous workflow orchestration.
Candidate Profile
  • Demonstrated hands-on experience using agentic AI tools in real-world development environments.
  • Strong understanding of how to maximize AI effectiveness through prompt engineering, workflow design, and agent orchestration.
  • Ability to work independently, define technical direction, and collaborate effectively with cross-functional stakeholders.
  • Seniority measured by depth of relevant AI and agentic development experience rather than total years of software engineering experience.
Nice-to-Haves:
  • Experience with LangChain, LangGraph, LlamaIndex, Hugging Face, or similar AI frameworks.
  • Experience building agentic reasoning loops with tool usage through MCP.
  • Experience implementing HIL clarification workflows and human approval checkpoints.
  • Infrastructure-as-Code experience using AWS CDK (TypeScript preferred).
  • Familiarity with model governance frameworks, content classification, and AI safety controls.
  • Experience with dependency scanning, vulnerability management, and security gates in CI/CD pipelines.
  • Experience working in monorepo or multi-package development environments.
  • Background supporting engineering productivity tools, developer platforms, or internal engineering enablement initiatives.
  • Experience supporting hardware engineering, CAD systems, or engineering knowledge management platforms.
  • Data science or machine learning background with experience evaluating model performance and accuracy.
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