N
Nxp
AI Engineer
GenAI Field Application Engineer Intern
On-siteJuniorAI Engineerposted 1w ago
Role summaryAI-generated
This internship focuses on hands-on development of GenAI solutions to streamline engineering workflows and knowledge management at NXP, emphasizing practical PoC implementation and tool evaluation. Candidates will collaborate with cross-functional teams to build AI-driven assistants and automate repetitive tasks using enterprise-grade platforms like Copilot Studio and SharePoint.
Skills required
Prompt engineeringMicrosoft copilot studioEnterprise ai integrationKnowledge graphsAutomation workflowsLlm benchmarkingDocument retrievalAi agent architectureSharepoint apiPower automateGenerative AIAgentic AIData analysisSoftware engineeringAIData scienceLLMsPythonAzureLangChainRAGPower BIData visualization
About this role
Responsibilities
- Participate in the development and deployment of Generative AI use cases to improve engineering productivity, knowledge management, and business workflow automation.
- Design and implement AI-powered solutions using Microsoft Copilot, Copilot Studio, Glean, Vero, Power Automate, SharePoint and other enterprise AI platforms.
- Build and maintain internal knowledge assistants, AI agents, and document retrieval systems for engineering, sales, and customer support teams.
- Develop workflows for automated information collection, report generation, knowledge extraction, and data analysis from enterprise data sources.
- Create Proof-of-Concept (PoC) projects for AI-driven engineering use cases including technical knowledge search, customer visit report summarization, project tracking, and task automation.
- Evaluate and benchmark different AI tools, prompt engineering techniques, and agent architectures to improve solution quality and user experience.
- Collaborate with engineering, field application engineering (FAE), and digital transformation teams to identify and implement new GenAI opportunities.
- Document use cases, workflows, best practices, and technical implementation guides for internal adoption.
Requirements
- Master or Bachelor student in Computer Science, Software Engineering, Electronic Engineering, Artificial Intelligence, Data Science, Information Systems, or relevant disciplines.
- Strong interest in Generative AI, Large Language Models (LLM), AI Agents, and enterprise AI applications.
- Familiar with Python programming and basic software development practices.
- Familiar with one or more AI frameworks or platforms such as OpenAI API, Azure AI Services, Microsoft Copilot, Copilot Studio, LangChain, Semantic Kernel, or similar technologies.
- Understanding of Retrieval-Augmented Generation (RAG), prompt engineering, vector databases, or knowledge management concepts is a plus.
- Familiar with Microsoft 365 ecosystem including SharePoint, Teams, Power Automate, Power Apps, or Power BI is a plus.
- Experience with web development, data visualization, workflow automation, or chatbot development is a plus.
- Strong analytical thinking and problem-solving skills.
- Good communication skills and teamwork for cross-functional and global collaboration.
- Good English reading and writing skills.
Preferred Qualifications
- Experience with AI agent development, chatbot implementation, or LLM-based applications.
- Experience with Glean, Vero, Microsoft Copilot, Copilot Studio, Power Platform, or similar enterprise AI tools.
- Experience with enterprise search, knowledge management systems, or document intelligence solutions.
- Contributions to open-source projects, hackathons, research projects, or AI-related publications are highly appreciated.
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