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Cognichip · Redwood City, CA

Staff Software Engineer - Agentic AI Systems

directorfull timePosted 5 days ago
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Job Title

Staff Software Engineer - Agentic AI Systems

Job Description

About the Role

- We are seeking a Staff Agentic AI Engineer to lead the architecture, implementation, and production deployment of advanced agentic AI systems.

- In this role, you will serve as a technical authority for multi-agent systems across Cognichip, driving long-horizon autonomous workflows that integrate proprietary models, semiconductor design tools, and cloud infrastructure.

- You will design systems that reason across multiple steps, manage memory and knowledge grounding, and operate reliably in production over extended periods.

- This is a senior individual contributor leadership role.

- You will define architectural patterns, raise engineering standards, mentor other engineers, and partner closely with Applied AI, Product Engineering, and Platform teams to translate cutting-edge research into scalable enterprise solutions.

- Success in this role is measured not by prototypes, but by robust, production-grade agentic systems shipped to customers.

Key Responsibilities

Technical Leadership & Architecture

- Own the end-to-end architecture of agentic AI workflows, including reasoning pipelines, memory systems, RAG, evaluation frameworks, and orchestration patterns.

- Define best practices for supervisor/sub-agent coordination, fault tolerance, long-horizon reasoning, and system robustness.

- Serve as Cognichip’s internal expert on agentic AI system design and production deployment.

Build & Operate Agentic Systems

- Design and implement multi-step autonomous agents with advanced memory, Retrieval-Augmented Generation (RAG), and integrations to tools, APIs, and enterprise data sources.

- Deliver production-grade workflows deployed on cloud platforms (AWS preferred), with strong observability, monitoring, and reliability guarantees.

- Drive continuous improvement of agent quality, cost efficiency, and performance in real customer environments.

Evaluation & Optimization

- Define and implement comprehensive evaluation pipelines for agentic systems:

- Task success / failure classification

- Grounding accuracy

- Reasoning robustness

- Tool-use reliability

- Long-horizon completion rates

- Establish regression testing and benchmarking strategies using frameworks such as LangSmith or custom evaluation infrastructure.

- Balance automated evaluation with human-in-the-loop feedback for complex workflows.

Cross-Functional Collaboration

- Partner with Applied AI researchers to productionize new capabilities.

- Work with backend/platform engineers to integrate agents with cloud infrastructure and enterprise systems.

- Collaborate with product managers to translate semiconductor workflows into agent-driven user experiences.

Organizational Impact

- Set technical direction for agentic AI systems across teams.

- Mentor senior and mid-level engineers.

- Raise engineering standards around agent architecture, evaluation, and production readiness.

Required Qualifications

- Bachelor’s or Master’s degree in Computer Science, Software Engineering, or related field.

- 8–12+ years of professional software engineering experience.

- 3+ years building and deploying production-grade agentic AI systems.

- Deep hands-on experience with:

- Multi-agent orchestration frameworks (LangGraph, LangChain, LangSmith, or equivalents)

- RAG pipelines and memory systems

- Agent evaluation methodologies

- Strong proficiency in Python and backend cloud services (AWS preferred).

- Proven track record delivering complex AI systems into production.

Preferred Qualifications

- Contributions to open-source AI projects or frameworks.

- Experience with multi-agent orchestration patterns at scale.

- Knowledge of reinforcement learning, planning algorithms, or autonomous reasoning.

- Track record of deploying agentic AI systems in production at scale.

What We Offer

- The chance to work on state-of-the-art AI systems that push the boundaries of autonomy and reasoning.

- A collaborative environment where engineering meets research.

- Competitive compensation and equity in a fast-growing AI startup.

- A culture that values ownership, curiosity, and technical excellence.

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