About The Position

Wells Fargo is seeking talent for the 2027 Quantitative Analytics Summer Internship Program, specifically for PhD candidates in Applied Computational Intelligence (ACI). This 10-week program offers PhD candidates the opportunity to apply advanced analytics, artificial intelligence, and machine learning to complex business challenges within a leading financial institution. Interns will engage in hands-on project work, receive mentorship, participate in technical training, and gain exposure to senior leaders. The program aims to foster innovative solutions for business strategy, risk management, and customer experience, encouraging interns to bring fresh perspectives and develop both technical and business acumen in a collaborative setting. High-performing interns may be considered for full-time roles post-graduation.

Requirements

  • 2+ years of work experience, or equivalent demonstrated through one or a combination of the following: work experience, training, military experience, education
  • Strong programming experience with tools such as Python, Go, C++, Rust, Java, Spark, or similar technologies
  • Hands-on experience developing machine learning and AI solutions in research, academic, or industry environments
  • Knowledge and Experience In: Large Language Models & Model Training
  • Experience with supervised fine-tuning (SFT) and post-training methodologies including RLHF, RLAIF, PPO, DPO, and GRPO
  • Training and deploying models in cloud environments, including GCP
  • Agentic AI
  • Multi-agent architectures and orchestration frameworks like LangChain, LangGraph, Google's ADK, CrewAI
  • Retrieval-Augmented Generation (RAG) applications and intelligent agent deployment
  • AI Infrastructure & Optimization
  • Distributed GPU training
  • Efficient model tuning approaches such as LoRA and PEFT
  • Strong quantitative and analytical skills, with the ability to apply data analysis, modeling, visualization, statistics, research, and generative AI to generate insights, adapt quickly, and support innovative solutions.
  • Ability to execute with urgency, apply data and software engineering skills to design, develop, and deliver scalable solutions, and drive operational excellence with strong data management and an enterprise mindset.
  • Strong communication skills, with the ability to foster an inclusive environment and actively seek, apply, and respond to feedback in collaborative analytical settings.
  • Strong business acumen with a commitment to providing excellent service and supporting data-informed business outcomes.
  • Ability to act with integrity, support risk assessments, and apply risk controls to help manage risk in a disciplined, data-driven environment.

Nice To Haves

  • Currently pursuing a PhD degree in Computer Science, Statistics, Data Science, Econometrics, Mathematics, Engineering or related quantitative field, with an expected graduation date after December 2027.

Responsibilities

  • Develop AI-powered advisors and decision support systems.
  • Build Generative AI assistants and intelligent agents.
  • Design and deploy agentic AI and multi-agent systems.
  • Create enterprise knowledge intelligence platforms using RAG, LLMs, and multimodal AI.
  • Advance enterprise AI through model training, evaluation, optimization, and deployment of LLMs, speech technologies, and foundation models.
  • Deploy scalable Generative AI and machine learning solutions.
  • Apply statistical and quantitative techniques to validate model design, calibration, and implementation.

Benefits

  • Mentorship
  • Technical training
  • Exposure to senior leaders
  • Networking opportunities
  • Professional development opportunities
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