XPENG

smart technology

AgenticInfrastructureEngineerIntern

Mountain View, California, United States
Market Sentiment
HIGH DEMAND

Neural analysis suggests this role is
optimal for Entry candidates.

The Brief

“Agentic Infrastructure Engineer Intern at XPENG. Skills: Agentic Infrastructure, LLM orchestration, multi-agent coordination, automated workflow systems, CI/CD, observability, evaluation, workflow automation. Design and implement Electron-based desktop applications for prompt workflow visualization, process inspection, and self-service dashboards for non-engineering stakeholders.. Contribute to JavaScript/TypeScript components that enable LLM orchestration, AI workflow interoperability, pipeline”

What You'll Achieve.

power real-time decision making across autonomous driving and AI platforms; surface runtime insights and model performance trends; make significant impact on the transportation revolution by the means of advancing autonomous driving

Industry & Context.

smart technology
Problems you'll solve

Self-motivated and proactive in solving problems.; in debugging, systems thinking, and iterative problem solving.

What They're Looking For.

Must Have

Currently enrolled in a Bachelor’s, Master’s, or Ph. D. program in Computer Science, Software Engineering, Electrical Engineering, or a related technical field., proficiency in JavaScript/TypeScript and modern frontendackend development practices., Experience with Electron Framework, including desktop application development, IPC communication, and renderer/main process architecture., Familiarity with AI agent systems, LLM tooling frameworks, orchestration pipelines, or evaluation workflows., Understanding of CI/CD fundamentals, automated testing pipelines, artifact publishing, and developer productivity tooling., Experience designing evaluation or verification systems for AI outputs, structured data validation, or workflow automation., communication and documentation skills with the ability to clearly present technical ideas, PRs, reports, and experimental findings.

Nice to Have

Experience building internal AI developer tools, observability platforms, or workflow orchestration systems., Familiarity with modern AI infrastructure frameworks such as LangFuse, OpenTelemetry, MCP, or related tooling ecosystems., Experience with prompt engineering, automated evaluation pipelines, or agent reliability optimization., Knowledge of modern frontend application architecture and performance optimization for Electron-based systems., Experience working in fast-paced engineering environments with rapid iteration cycles and cross-functional collaboration., Contributions to open-source projects or prior experience developing scalable AI infrastructure platforms.

What You'll Do.

Design and implement Electron-based desktop applications for prompt workflow visualization

and self-service dashboards for non-engineering stakeholders.

Contribute to JavaScript/TypeScript components that enable LLM orchestration

AI workflow interoperability

and MCP-compatible connectors.

Build and extend evaluation frameworks for verifying agent outputs and system reliability

including LLM-as-judge metrics

structured validation

and automated feedback loops.

Instrument operational observability tooling (e. g.

custom metrics) and develop automated dashboards to surface runtime insights and model performance trends.

Participate in the full engineering lifecycle including design reviews

and Git-based collaboration workflows.

Collaborate closely with platform engineers and researchers on benchmark selection

and quantitative evaluation methodologies.

How You'll Work.

Team & Collaboration

working closely with senior engineers across AI infrastructure and platform teams; Collaborate closely with platform engineers and researchers; cross-functional collaboration

Communication Scope

communication and documentation skills with the ability to clearly present technical ideas, PRs, reports, and experimental findings.; Clear communicators

Full Job Description

XPENG is a leading smart technology company at the forefront of innovation, integrating advanced AI and autonomous driving technologies into its vehicles, including electric vehicles (EVs), electric vertical take-off and landing (eVTOL) aircraft, and robotics. With a strong focus on intelligent mobility, XPENG is dedicated to reshaping the future of transportation through cutting-edge R&D in AI, machine learning, and smart connectivity. XPENG is building the next generation of enterprise AI infrastructure — autonomous, application-driven systems that power real-time decision making across autonomous driving and AI platforms. As part of our AI Enablement team, you will work on internal platforms at the frontier of LLM orchestration, multi-agent coordination, and automated workflow systems. This role is ideal for candidates passionate about developer productivity, AI-native tooling, and scalable infrastructure. You will build systems for CI/CD, observability, evaluation, and workflow automation, while working closely with senior engineers across AI infrastructure and platform teams. Key Responsibilities Design and implement Electron-based desktop applications for prompt workflow visualization, process inspection, and self-service dashboards for non-engineering stakeholders. Contribute to JavaScript/TypeScript components that enable LLM orchestration, AI workflow interoperability, pipeline automation, and MCP-compatible connectors. Build and extend evaluation frameworks for verifying agent outputs and system reliability, including LLM-as-judge metrics, structured validation, and automated feedback loops. Instrument operational observability tooling (e.g., LangFuse, OpenTelemetry, custom metrics) and develop automated dashboards to surface runtime insights and model performance trends. Participate in the full engineering lifecycle including design reviews, implementation, testing, CI/CD integration, and Git-based collaboration workflows. Collaborate closely with platfor

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