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Location
Online
Duration
8 Weeks
Upcoming Sessions
Winter 2026
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PBL

Spotify Project

AI in Marketing Personalization

Build and evaluate personalized text and image generation systems using cutting-edge generative AI techniques for real-world marketing use cases.

Project
Spotify Project
Location
Online
Duration
8 Weeks
Upcoming Sessions
Winter 2026
Outcomes
Location
Online
Duration
8 Weeks
Upcoming Sessions
Winter 2026
Have more questions?

Outcomes

Design RAG pipelines for information retrieval tasks

Implement Reinforcement Learning for model refinement  

Apply few-shot learning to enhance model adaptability  

Use  Stable Diffusion to generate customized images

Fine-tune LLMs  for personalized text generation  

You Will Get

You Will Get

Industry Guidance

Work directly with our project leads—experts and top researchers—who bring their real-world insights and expertise straight to your learning experience.

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Research Experience

Collaborate with teammates and the project lead in a multi-week project to pursue novel questions in your research field.

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Peer Networks

Engage with our PBL participants from all over the world. Collaborate with new peers and learn about their own research endeavours.

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A Strong Portfolio

Put your best foot forward in the PBL with a standout project and receive a PBL Evaluation Report that can be used as a recommendation letter for employers and grad schools.

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Expert Guidance

Get personalized feedback to grow your research and innovation skills.

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Final Outcomes

Deliverables

Real projects, lasting connections, and new opportunities beyond your program.

Project Deliverables
The final presentation of your 8 weeks could be a poster, written report, or a slide deck, all of which can be expanded on.
Research Extension
Utilize up to 5 additional meeting times with the project lead after the project’s conclusion to build your work out for publication or conference presentation.
Industry Network
Meet peers in your projects and participate in a global talent community both online and in-person.
Industry Application

Industry Application

Spotify is a leader in personalized content delivery, using AI to tailor music, podcast, and ad experiences to billions of users. This PBL reflects real-world challenges in content recommendation, user modeling, and generative personalization—key areas of innovation at Spotify and other tech platforms. Students will gain practical exposure to text and image generation, multi-modal modeling, and preference-aware learning, aligning directly with AI use cases in streaming, e-commerce, and digital advertising.

Popular Industry Positions

AI Product Analyst

Evaluate performance of GenAI-driven recommendation systems.

Data Scientist (NLP/Multimodal)

Analyze and model user behavior from text and visual signals.

Machine Learning Engineer

Build and deploy personalization pipelines for user content.

Tracks

Tracks

Track 1

Scaling Named Entity Recognition (NER) with Generative AI

Students will build and compare NER systems using both fine-tuned encoder models and prompt-based LLM approaches to explore efficiency and accuracy tradeoffs.

  • Implement NER with fine-tuned encoder models (e.g., BERT)

  • Apply few-shot prompting using large language models

  • Benchmark BERT vs. LLM-based NER on performance metrics

  • Design hybrid pipelines that combine classification and generation

  • Optimize for accuracy, latency, and inference cost

Track 2

Context-Aware Chatbot with Retrieval-Augmented Generation (RAG)

Students will develop a chatbot system that uses knowledge graphs and RAG to enhance contextual understanding and response accuracy.

  • Extract semantic triples using dependency parsing

  • Build and query a Neo4j graph database for context storage

  • Use SPARQL and LLMs for context-aware retrieval

  • Vectorize knowledge using Graph Neural Networks (GNNs)

  • Compare chatbot outputs with vs. without RAG integration

Track 3

Text-to-Image Personalization for Advertising

Students will create a personalized advertising system that uses multimodal AI models to generate and select high-impact visual content.

  • Pretrain or fine-tune ViT + BERT for image captioning

  • Generate visuals using Stable Diffusion tailored to user profiles

  • Rank images using LLMs for click-through prediction

  • Benchmark against conventional deep learning models

  • Analyze personalization impact using CTR and engagement metrics

PBL Journey

PBL Journey

Online PBL Projects meet once a week for 8 weeks, and follow the research project format. Participants will meet the project lead, learn the conventions of the field and familiarize themselves with the tracks, then spend the middle portion of their time collaborating to develop their research. 

At the end, participants will present their final project and receive feedback, with the opportunity to extend their timeline and develop the project in greater depth.

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Project Team

Project Team

Our Academic Team plays a vital role in your PBL journey at Blended Learning. We are dedicated to enhancing your learning experience and ensuring your academic success. Our team consists of three distinct roles, each with a specific focus to support your Research Guidance, Project Progress, and Personal Growth.

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Project Lead

Providing Industry and Research Guidance

Staff Research Scientist, Epsilon


He is a Staff Research Scientist at Epsilon, where he has led the development of machine learning models for advertising personalization at scale—impacting billions of users and processing petabytes of data. He earned his Ph.D. in Computer Science from the University of Illinois at Chicago in 2022, with a research focus on multimodal conversational agents. His academic and industry work has centered on state-of-the-art generative AI, personalization, and scalable deployment of LLM-powered applications. Through internships and thesis research, he has contributed to advancing AI-driven user engagement and natural interaction systems.

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Academic Advisor

Tracking Your Project Development

The Academic Advisor is dedicated to your project completion success. They manage the progress of your PBL, guiding team formation, facilitating group discussions, and resolving conflicts. Additionally, the Academic Advisor ensures team member contributions are on track and provides logistical support, including attendance tracking, hosting recitation sessions, managing research support requests, and conducting student evaluations at the end of the PBL.

From Our Students

From Our Students

"After a night spent debugging, I suddenly discovered the program running perfectly. In that triumphant moment, you realize your true capability and success. The exhaustion fades, replaced by the thrill of knowing your skills and persistence led to this achievement, reaffirming your potential."

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Nicole Y.

National University of Singapore
B.S. Economics

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FAQs

FAQs

What is the learning format of a PBL?

All PBLs are offered in an 8-week online format that begins with an orientation followed by subject setup overview of the different tracks. The majority of the session time is dedicated to project development, with a final presentation at the culmination of the 8 weeks. Many PBLs are also offered bi-annually in an on-campus format that consists of daily in-person meetings.

How long does each PBL cohort last?

One round of the Online PBL cohort lasts 8 weeks, preceded bys a pre-PBL orientation week. Each On-Campus PBL usually has 8 in person meetings, with intensive classroom education and collaboration. This means the biggest difference between online and on-campus PBLs is time participants have in between meetings. 

How can I be more academically prepared before the PBL starts?

Review the Blended Learning Insights sent by the Academic Advisor and familiarize yourself with the project topic and pre-learning materials. Ensure you have all necessary softwares and other resources needed for the PBL.

For each PBL cohort, will I work in teams? Are PBL team members self-selected or assigned?

Yes, you will work in teams for each round of the PBL Cohort. Each team has 3 to 6 participants, organized by the Academic Team. The Academic Advisor will organize groupings based on students' backgrounds, preferred track, and skills. 

Can I work with the Project Lead on my project after the PBL ends?

Yes, with your AI + X Research Plan, you may request up to five PBL Research Extension meetings, where you work with the project lead to develop your project into a working manuscript. To schedule a PBL Research Extension meeting, talk to your Academic Advisor at the conclusion of your PBL.

What do I receive at the end of the PBL?

At the conclusion of the PBL cohort, you can request a PBL Evaluation Report which summarizes the PBL content, the hours you spent, the track you chose, and includes a recommendation letter from the Project Lead (for eligible participants who completed the project successfully).

Is attendance mandatory for PBL Live Sessions and Recitation Sessions?

Yes, attendance is mandatory for both PBL Live Sessions and Recitation Sessions. Participants with three or more unexcused absences forfeit their eligibility for a PBL Evaluation Report. 

Do I need to have my camera on during online PBL Live Sessions?

Yes, you must have your camera on during online PBL Live Sessions. Participants with cameras off will be marked as absent. This is meant to encourage active engagement and participation in meetings.

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