Summer 2027 Master's AI Research, Reinforcement Learning and LLM Post-Training Intern

Advanced Micro Devices, IncAdvanced Micro Devices, IncSanta Clara, California, United States
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Posted

9/21/2026

Employment

Intern

Range

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Work style

Hybrid

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AI summary

Core responsibilities

The intern will research and prototype reinforcement learning methods for language and code models while designing controlled experiments to analyze model performance. They will also collaborate with research and infrastructure teams to improve training, logging, and reproducibility of AI models.

Requirements overview

Candidates must be currently pursuing a PhD in Computer Science, Machine Learning, Electrical Engineering, or a related field. Proficiency in Python, PyTorch, and reinforcement learning techniques is required, along with experience in conducting reproducible machine learning experiments.

Key skills

Reinforcement LearningLLM Post-TrainingPythonPyTorchDeep LearningPolicy OptimizationPreference LearningReward ModelingGPU ComputingDistributed TrainingMachine LearningData AnalysisTechnical DocumentationResearchCode Models

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Education requirements

postgraduate degree

About Advanced Micro Devices, Inc

Industry

Semiconductor Manufacturing

Employees

51,156

Type

Public Company

Size

10,001+ employees

We care deeply about transforming lives with AMD technology to enrich our industry, our communities, and the world. Our mission is to build great products that accelerate next-generation computing experiences – the building blocks for the data center, artificial intelligence, PCs, gaming and embedded. Underpinning our mission is the AMD culture. We push the limits of innovation to solve the world’s most important challenges. We strive for execution excellence while being direct, humble, collaborative, and inclusive of diverse perspectives. AMD together we advance_

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Job categories

TechnologyScience & ResearchSoftwareData & AnalyticsEngineering

Description

ADVANCE YOUR CAREER. ADVANCE THE WORLD. At AMD, we believe technology has the power to solve the world’s most important challenges. From advancing healthcare and scientific discovery to powering AI and the technologies people rely on every day, innovation at AMD is shaping the future. Whether you’re designing next-gen processors, enabling AI breakthroughs, or bringing leading edge products to market, every role at AMD contributes to something bigger — technology that moves the world forward. Join us and, together, we’ll advance your career. As an AMD intern, you’ll be placed at the epicenter of the AI ecosystem, working alongside experts and industry pioneers. You’ll do important work, learn new skills, expand your network, and gain real-world experience on projects that impact millions of end-users worldwide. Whether you’re an undergrad or a PhD student, your contributions matter—and your experience here will be a launchpad for what comes next. JOB DETAILS: Location: Santa Clara, CA, USA Onsite/Hybrid: This role requires the student to work full time (40 hours a week), in either a hybrid or onsite work structure throughout the duration of the co-op/intern term Duration: Summer 2027 Internship Semester Schools: May 24, 2027 – August 13, 2027 Quarter Schools: June 21, 2027 – September 10, 2027 WHAT YOU WILL BE DOING: We are seeking highly motivated AI Research Intern, RL and LLM Post-Training, to join our team. In this role, you will – Research and prototype RL methods for post-training language and code models. Explore policy optimization, preference learning, reward modeling, exploration, and credit-assignment techniques. Design and run controlled experiments using verifiable, preference-based, or simulator-generated feedback. Analyze failure modes such as reward hacking, policy degeneration, and training instability. Develop evaluation methods that reflect realistic engineering constraints. Collaborate with research and infrastructure teams on rollout generation, training, logging, and reproducibility. Document findings and contribute to technical reports and publications. WHO WE ARE LOOKING FOR: Must be currently pursuing a PhD in Computer Science, Machine Learning, Electrical or Computer Engineering, or a related field. Knowledge of reinforcement learning and modern deep-learning methods. Experience implementing and evaluating machine-learning models using Python and frameworks such as PyTorch. Familiarity with LLM post-training, RLHF/RLAIF, preference optimization, or language and code agents. Experience conducting reproducible experiments and analyzing empirical results. Publications at leading machine-learning or computer-vision conferences—such as ICML, NeurIPS, ICLR, CVPR, ICCV, or ECCV—are preferred. Exposure to GPU computing or distributed training is beneficial. Familiarity with compilers, kernels, optimization, EDA workflows, or large-scale codebases is a plus. Benefits offered are described: AMD benefits at a glance. AMD does not accept unsolicited resumes from headhunters, recruitment agencies, or fee-based recruitment services. AMD and its subsidiaries are equal opportunity, inclusive employers and will consider all applicants without regard to age, ancestry, color, marital status, medical condition, mental or physical disability, national origin, race, religion, political and/or third-party affiliation, sex, pregnancy, sexual orientation, gender identity, military or veteran status, or any other characteristic protected by law. We encourage applications from all qualified candidates and will accommodate applicants’ needs under the respective laws throughout all stages of the recruitment and selection process. AMD may use Artificial Intelligence to help screen, assess or select applicants for this position. AMD’s “Responsible AI Policy” is available here. This posting is for an existing vacancy.

Requirements

  • Reinforcement Learning
  • LLM Post-Training
  • Python
  • PyTorch
  • Deep Learning
  • Policy Optimization
  • Preference Learning
  • Reward Modeling
  • GPU Computing
  • Distributed Training
  • Machine Learning
  • Data Analysis
  • Technical Documentation
  • Research
  • Code Models

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