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Machine Learning Engineer Intern

Job in Putnam, Windham County, Connecticut, 06260, USA
Listing for: Young World Physical Education
Apprenticeship/Internship position
Listed on 2026-06-24
Job specializations:
  • IT/Tech
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Job Description & How to Apply Below

Machine Learning Engineer Intern

Job : 5079518

Final date to receive applications: Posted until filled

Posted: Apr 03, 2025 12:00 AM (UTC)

Starting Date: Jun 16, 2025

Job Description

AI + Elite Basketball | Summer 2025
Duration: ~8 weeks (June 16 ~ Aug 11)
Onsite (Putnam, CT), with housing & meals supported through PSA’s campus
Type:
Unpaid internship, with potential path into a deeper role beyond summer
Open to candidates with CPT, OPT, and H-1B

About Us

This internship is hosted by PAI (Precision Athletics Intelligence), a new AI athletic program by Putnam Science Academy (PSA) — one of the most elite basketball-focused high schools in the U.S.

  • PSA has won 5 National Prep School Basketball Championships in 8 years, most recently in March 2025
  • The school’s mission is to deliver world‑class private high school education while developing players for NCAA and NBA levels
  • PAI is built to bring AI into high‑performance sports and education
    , starting with this summer MVP project

This is PAI’s first technical initiative
, aiming to create a foundational performance analysis platform for PSA’s nationally ranked basketball program — with high visibility and real‑world application from day one.

What You’ll Build

You’ll join a small, focused team building an end‑to‑end system to:

  • Automatically analyze practice footage
  • Detect key actions (shooting, movement, defensive effort)
  • Deliver structured feedback to coaches and players within minutes

This product is aiming China Market and it will serve elite athletes and coaching staff immediately, with long‑term potential to scale across teams and domains.

Your Role

As an ML intern, you'll work on the core computer vision pipelines that power the system.

Responsibilities
  • Use or fine‑tune models like YOLOv8
    , Open Pose
    , or Media Pipe
  • Build pipelines to extract training insights from video
  • Process raw frames into structured data (e.g. player tracking, shot detection)
  • Evaluate models on accuracy, reliability, and latency
  • Deliver usable outputs via APIs to frontend/dev teams
  • Write modular, reproducible code for experimentation and iteration
Core Skills
  • Strong Python skills; comfortable with Jupyter, scripting, and code structure
  • Experience with PyTorch or Tensor Flow — or fast learning capability
  • Comfortable using OpenCV and working with image/video data
  • Familiar with Git and collaborative development environments
  • Fluent spoken Chinese (Mandarin)
Mindset
  • Has real confidence in their ability to learn fast and figure things out independently
  • Can take vague or high‑level product goals
    , and turn them into working code
  • Works through ambiguity with speed, structure, and clarity
  • Cares about doing real work that gets used — not just academic experiments
  • Is genuinely interested in basketball and understands the game at a basic level
  • Thrives in a builder‑style environment with ownership, speed, and open problems
Bonus (Not Required)
  • Projects involving video analysis, pose estimation, or CV pipelines
  • Experience with DeepSORT, sports heatmaps, or action recognition
  • Familiarity with serving models via FastAPI, Flask, or REST endpoints
  • Background as a player, coach, or data analyst in sports
Who Can Apply
  • Undergraduates (junior/senior preferred) with strong project experience
  • Master’s students in CS, AI, or related fields
  • PhD students focused on applied machine learning
  • Self‑taught engineers — if you’ve built real things, we want to see them

We value your ability to build and think clearly over your academic label.

Why This Matters

This is not a typical early‑stage internship.

While our tech team is just starting out, our platform isn’t. You’ll be building within a system that already has:

  • A championship‑level basketball program
  • Immediate real‑world users: athletes and coaches with daily training needs
  • A founder with full access to decision‑making, facilities, and execution
  • A high‑trust environment where things move fast, and feedback is real

In many ways, PSA provides what most startups seek after Y Combinator:

  • A live environment, institutional support, immediate demand, and the room to build and scale

If you have:

  • Strong learning ability
  • Clear technical thinking
  • Ambition to turn huge ideas into real systems

…and you’re excited by sports, education, AI, and building things from scratch — you’ll thrive here.

Job Requirements
  • Bachelor degree preferred.
Contact Information
  • TIEQIANG DING, PRESIDENT
  • Putnam Science Academy Main Office
  • Phone:
  • Email: TDING
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