AI/ML Intern - Agentic Retrieval & Enterprise RAG
ZoomAbout the role
About the team
You will join the Generative AI team, focused on building intelligent, production-grade AI features used by enterprise customers. The team values curiosity, clear communication, and strong collaboration. You will work closely with engineers and product partners and contribute insights that help shape technical decisions and system design.
What you can expect
Zoom is building the next generation of enterprise AI systems that power intelligent search, retrieval, and agentic workflows across Zoom products. As an AI Engineer / Machine Learning Engineer Intern, you will work on agentic retrieval and Enterprise RAG systems that operate at production scale and directly impact real users. This role sits at the intersection of large language models, retrieval systems, and production engineering. You will help design, implement, and optimize agentic pipelines that retrieve, reason over, and act on enterprise knowledge with high accuracy, low latency, and strong reliability guarantees.
You will contribute to one or more of the following areas:
Agentic Retrieval and RAG Systems
Design and implement agentic retrieval pipelines that orchestrate multi-step reasoning, retrieval, and tool or function calls
Improve end-to-end performance of Enterprise RAG systems, including latency, throughput, and cost efficiency
Integrate agentic workflows with unified retrieval layers and enterprise data sources
Retrieval Quality and Efficiency
Optimize retrieval strategies to reduce redundant calls and unnecessary context expansion
Implement content compression or filtering techniques to improve reasoning efficiency while preserving answer quality
Analyze retrieval and function-call traces to identify inefficiencies and failure patterns
Production-Grade Engineering
Build scalable, maintainable ML and retrieval components suitable for production environments
Add instrumentation, logging, and evaluation hooks to measure system behavior and product impact
Collaborate with engineers and researchers to transition prototypes into reliable services
What we're looking for:
Be currently pursuing a BS, MS, or PhD in Computer Science, Machine Learning, or a related field
Have programming skills in Python and familiarity with production ML or backend systems
Have a solid understanding of information retrieval, NLP, or machine learning fundamentals
Have experience or coursework related to LLMs, retrieval-augmented generation, or agent-based systems
Have the ability to reason about system trade-offs such as accuracy, latency, and cost
Preferred Qualifications
Have hands-on experience with LLM APIs, prompt engineering, or fine-tuning
Have familiarity with search systems, vector databases, or ranking pipelines
Have exposure to agentic workflows, tool or function calling, or multi-step reasoning systems
Have experience working with real datasets and evaluating model or system performance
Have an interest in building AI systems with direct product impact, not just research prototypes
What you will benefit
Hands-on experience building production-facing AI systems used at enterprise scale
Exposure to state-of-the-art agentic retrieval and Enterprise RAG architectures
Mentorship from experienced AI engineers and ML practitioners
Opportunity to see your work influence real Zoom products and user experiences
A strong foundation for a career in applied AI, ML engineering, or AI platform development
Salary Range or On Target Earnings:
Minimum:
$66.50Maximum:
$106.50In addition to the base salary and/or OTE listed Zoom has a Total Direct Compensation philosophy that takes into consideration; base salary, bonus and equity value.
Note: Starting pay will be based on a number of factors and commensurate with qualifications & experience.
We also have a location based compensation structure; there may be a different range for candidates in this and other locations.
Ways of Working
Our structured hybrid approach is centered around our offices and remote work environments. The work style of each role, Hybrid, Remote, or In-Person is indicated in the job description/posting.
Benefits
As part of our award-winning workplace culture and commitment to delivering happiness, our benefits program offers a varie
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