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Ml Research Intern Jobs (NOW HIRING)

Working closely with IBM Research scientists and academic collaborators, the intern will design ... Experience developing, fine-tuning, or evaluating AI/ML models using PyTorch, Hugging Face, or ...

The advanced research team seeks a skilled Applied Research Science Intern to help build next ... Experience or understanding of common ML-Ops patterns is a plus * Experience with full stack ...

The advanced research team seeks a skilled Applied Research Science Intern to help build next ... Experience or understanding of common ML-Ops patterns is a plus * Experience with full stack ...

The advanced research team seeks a skilled Applied Research Science Intern to help build next ... Experience or understanding of common ML-Ops patterns is a plus * Experience with full stack ...

Working closely with IBM Research scientists and academic collaborators, the intern will design ... Experience developing, fine-tuning, or evaluating AI/ML models using PyTorch, Hugging Face, or ...

Experience developing, fine-tuning, or evaluating AI/ML models using PyTorch, Hugging Face, or ... Job Title IBM Research Intern 2027: AI Systems Date posted 02-Sep-2026 Job ID 131598 City ...

Experience developing, fine-tuning, or evaluating AI/ML models using PyTorch, Hugging Face, or ... Job Title IBM Research Intern 2027: AI Systems Date posted 02-Sep-2026 Job ID 131598 City ...

Working closely with IBM Research scientists and academic collaborators, the intern will design ... Experience developing, fine-tuning, or evaluating AI/ML models using PyTorch, Hugging Face, or ...

Experience developing, fine-tuning, or evaluating AI/ML models using PyTorch, Hugging Face, or ... Job Title IBM Research Intern 2027: AI Systems Date posted 02-Sep-2026 Job ID 131598 City ...

Experience developing, fine-tuning, or evaluating AI/ML models using PyTorch, Hugging Face, or ... Job Title IBM Research Intern 2027: AI Systems Date posted 02-Sep-2026 Job ID 131598 City ...

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Ml Research Intern information

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How much do ml research intern jobs pay per month?

As of Sep 11, 2026, the average monthly pay for ml research intern in the United States is $6,439.50, according to ZipRecruiter salary data. Most workers in this role earn between $4,416.67 and $7,666.67 per month, depending on experience, location, and employer.

What is an ML Research Intern?

ML Research Interns are students or recent graduates who support machine learning (ML) research projects, typically at universities, research labs, or tech companies. Their responsibilities often include programming experiments, analyzing data, implementing algorithms, and assisting senior researchers with ongoing studies. The goal is to gain hands-on experience in machine learning and research methodologies, often contributing to publications or product development. This role is ideal for those interested in pursuing advanced degrees or careers in artificial intelligence and data science.

What types of projects and collaboration can an ML Research Intern expect during their internship?

As an ML Research Intern, you’ll typically work on experimental or early-stage projects under the guidance of experienced researchers and engineers. You can expect to collaborate closely with your mentor, other interns, and sometimes cross-functional teams such as data engineering or product management. Your daily tasks might include literature reviews, data preprocessing, model implementation, and presenting your findings in team meetings. The collaborative environment is designed to help you learn from experts and contribute meaningfully to ongoing research initiatives.

What are the key skills and qualifications needed to thrive as an ML Research Intern, and why are they important?

To thrive as a ML Research Intern, you need a solid background in mathematics, statistics, and programming (usually Python), often supported by coursework or a degree in computer science or a related field. Familiarity with machine learning frameworks like TensorFlow or PyTorch, as well as version control systems like Git, is typically required. Strong analytical thinking, curiosity, and clear communication skills help interns collaborate effectively and present research findings. These abilities are crucial for contributing to innovative projects, solving complex problems, and advancing research goals in a fast-evolving field.
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Infographic showing various Ml Research Intern job openings in the United States as of September 2026, with employment types broken down into 1% Internship, 1% As Needed, 88% Full Time, 9% Part Time, and 1% Contract. Highlights an 79% Physical, 3% Hybrid, and 18% Remote job distribution, with an average salary of $77,274 per year, or $37.2 per hour.

IBM Research Intern 2027: AI Systems

San Jose, CA • On-site

IBM
IT Services • 10K+ employees

Other

Posted 8 days ago


IBM rating

8.0

Company rating: 8.0 out of 10

Based on 76 frontline employees who took The Breakroom Quiz


Job description

Introduction

IBM Research is seeking a highly motivated PhD student to join the AI Native Systems organization for a 2027 summer internship focused on advancing the efficiency, reliability, and scalability of agentic AI systems for IBM Z. The selected candidate will conduct research at the intersection of large language models, AI agents, machine learning systems, adaptive memory management, and enterprise infrastructure, developing novel techniques that enable agents to acquire, retain, retrieve, summarize, and utilize only the information necessary to successfully complete complex, long-horizon system-management tasks. Working closely with IBM Research scientists and academic collaborators, the intern will design, implement, and evaluate adaptive information-control mechanisms within the Finn/Paver agent framework, contributing to next-generation AI capabilities for IBM Z and Spyre-enabled environments while gaining experience in cutting-edge research with potential impact on future products, publications, and intellectual property.

Your role and responsibilities

As an intern, you will be responsible for:

Research, design, and prototype adaptive information-control mechanisms for agentic AI systems operating in IBM Z environments.

Define and model minimal sufficient agent state, including observations, retrieved evidence, memory, interaction history, tool outputs, and task progress information.

Develop and evaluate techniques for information acquisition, retrieval, summarization, memory management, context compression, and evidence-sufficiency estimation in long-horizon AI agent workflows.

Implement experimental solutions in Python and integrate selected approaches into the Finn/Paver system-management agent or representative agent frameworks.

Design and execute experiments on representative z/OS management tasks, measuring task completion reliability, context utilization, memory consumption, tool usage, latency, and inference efficiency.

Analyze tradeoffs between agent performance, information efficiency, computational cost, and system resource requirements for on-platform execution using IBM Spyre and future IBM Z AI accelerators.

Collaborate with IBM Research scientists and academic partners to review results, refine algorithms, and translate research findings into practical agent architectures.

Document research outcomes through technical reports, presentations, demonstrations, and potential publications or intellectual property disclosures.

Required technical and professional expertise

  • Currently pursuing a PhD in Computer Science, Computer Engineering, Electrical Engineering, Artificial Intelligence, Machine Learning, or a related technical field.

  • Demonstrated experience in machine learning, deep learning, large language models (LLMs), AI agents, natural language processing, or related AI research areas.

  • Strong programming skills in Python and experience with machine learning frameworks such as PyTorch, TensorFlow, or equivalent.

  • Experience designing and evaluating experiments, analyzing results, and developing research prototypes in AI, machine learning, or distributed systems.

  • Excellent written and verbal communication skills, with the ability to document technical work and present research findings to technical and business audiences.

Preferred technical and professional experience

Research experience in agentic AI, large language models (LLMs), retrieval-augmented generation (RAG), AI memory systems, or long-context reasoning.

Experience developing, fine-tuning, or evaluating AI/ML models using PyTorch, Hugging Face, or related frameworks.

Knowledge of AI systems topics such as context compression, information retrieval, memory management, planning, tool use, or inference optimization.

Experience conducting independent research resulting in publications, open-source contributions, patents, technical reports, or academic projects.

Familiarity with Linux-based environments, distributed systems, cloud infrastructure, enterprise computing platforms, or system administration workflows.

Interest in AI efficiency, privacy, security, and trustworthy AI systems.

IBM is committed to creating a diverse environment and is proud to be an equal-opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, gender, gender identity or expression, sexual orientation, national origin, caste, genetics, pregnancy, disability, neurodivergence, age, veteran status, or other characteristics. IBM is also committed to compliance with all fair employment practices regarding citizenship and immigration status.


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About IBM

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At IBM, work is more than a job - it's a calling: To build. To design. To code. To consult. To think along with clients and sell. To make markets. To invent. To collaborate. Not just to do something better, but to attempt things you've never thought possible. Are you ready to lead in this new era of technology and solve some of the world's most challenging problems? If so, lets talk.

Industry

It services

Company size

10,000+ Employees

Headquarters location

Armonk, NY, US

Year founded

1911

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