Congrats to AthlyticZ student, Jared Markowitz on winning the MIT @sloansportsconf.bsky.social Hackathon (Open Division). Details on Jared's big win in the link below. A special congrats to his Hackathon partner Jonas Dixon as well! #ssac #SportsAnalytics
www.linkedin.com/posts/jared-...
09.03.2026 18:57
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There's never been a better time to get your hands dirty. The tools are accessible. The data is out there. The only thing stopping most people is starting.
Twenty years of Sloan. Still learning. Still building. #SSAC #RSTATS #PYTHON #SPORTSANALYTICS
09.03.2026 17:36
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And if you're teaching this stuff (at any level) I'll say what I always say: craft end-to-end projects that students actually care about. Not toy datasets. Not disconnected exercises. Real questions, real data, real outputs they can point to and say "I built that and I can tell you why it works."
09.03.2026 17:36
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Anyone can copy code now with AI. The analysts who get hired are the ones who can explain the decisions behind it, storytell with data, and interact with stakeholders.
09.03.2026 17:36
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Build a model. Build an app. Write about it. Teach it to someone. You never know who's paying attention. One thing you put out into the world, that's how opportunities find you. Careers in this space aren't built on credentials alone. They're built on proof that you can do the work.
09.03.2026 17:36
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What stuck with me most was meeting the students. Sharp. Curious. Already building things. The future of this field is in good hands.
My message to them was simple:
Build.
09.03.2026 17:36
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But the highlight for me? I was invited by the National High School Sports Analytics Association to run an interactive session on building sports analytics apps with AI. I had some big names to follow on that agenda, people I've looked up to in this space for years, and I don't take that lightly.
09.03.2026 17:36
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Talked shop with professors whose opinions our team takes seriously, making sure we're building with actual academic rigor, not just marketing it.
09.03.2026 17:36
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Finally met in person with some folks I've done consulting work for, always hits different when you can shake hands. Had real conversations about university partnerships and team collaborations that I'm genuinely excited about. Met with instructors who teach on our platform.
09.03.2026 17:36
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Headed up to Boston this weekend for the 20th MIT Sloan Sports Analytics Conference.
Twenty years. Still one of the best weekends on the calendar.
I caught up with friends and former colleagues scattered across teams and league offices.
09.03.2026 17:36
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We are so excited to have @veerle.hypebright.nl on board to help lead the way!
20.02.2026 14:22
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Appreciate the conversations with @christophsax.bsky.social and @davidgranjon.bsky.social to get this done. In the coming months, youβll hear more about our vision for using blockr in sports, followed by workshop offerings directly from Cynkra on the Athlyticz platform.
Onward. π
18.02.2026 13:58
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blockr Shiny Apps
A few things that caught our attention:
β Build data apps in minutes with drag-and-drop blocks
β Each block handles one step: reading, transforming, visualizing
β Fully extensible, if you can code, you can build custom blocks
Read more about the project here: www.cynkra.com/blockr/
18.02.2026 13:58
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Think of it as visual programming powered by R, accessible to analysts who want to wrangle data and build dashboards without writing scripts. Itβs funded by @bms-news.bsky.social , battle-tested in pharma, and now coming to sports.
18.02.2026 13:58
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Cynkra will be leading workshops on blockr, their open-source framework for building data pipelines using a visual, point-and-click interface. No code required.
18.02.2026 13:58
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Excited to share that @cynkra.bsky.social has officially signed on as a Preferred Partner with Athlyticz. π€
What does this mean?
Our goal is to bring the strongest teams and individuals to our students, people at the forefront of data science tools that we believe can be game-changers in sports.
18.02.2026 13:58
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More physics-constrained Bayesian models lead to another interactive mobile app with my students.
Writeup coming soon
17.02.2026 18:10
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The Strangest Bottleneck in Modern LLMs | Towards Data Science
Why insanely fast GPUs still canβt make LLMs feel instant
Why is AI so slow? Bottlenecks aren't compute; it's memory.
towardsdatascience.com/the-stranges...
TiDAR = 6x speedup. β‘ Move from prompts to Infrastructure Eng.
#AI #LLM #DataScience #Engineering #Athlyticz
16.02.2026 20:17
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Can anyone guess what we are building for our students?!
#data #datascience #sportsanalytics #rstats #python
14.02.2026 21:42
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For students & early-career analysts applying to front offices: the model is the core of the work, that's where the rigor lives. But what puts you over the top is showing you can translate that model into expert storytelling, especially in an interview when you're walking someone through your work.
13.02.2026 13:46
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This is also season-long and context-neutral, no L/R splits. A matchup-level application would be a different beast entirely (automated daily pipelines, game-day lineup optimization, etc.).
13.02.2026 13:46
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Projections here are from an actual Bayesian framework that's been jittered/shifted to mask the information (so don't look too far into the values, i.e,. Judge projected 60 HR). This is a tooling demo. In production it pulls from an internal model stored in a database.
13.02.2026 13:46
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It ranks players against their position, flags credible interval overlap, & frames the output the way a front office would: uncertainty bands, replacement value, and roster construction implications. The goal is consistent, repeatable reports that a decision-maker can trust, not a chatbot summary.
13.02.2026 13:46
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It computes positional averages from the dataset itself, classifies hitter archetypes from K%/BB%/ISO combinations (elite contact-and-discipline, boom-or-bust power, patient on-base-driven, etc.), and adjusts its analysis based on defensive position.
13.02.2026 13:46
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On the AI agent in case anyone is curious, this isn't a generic LLM prompt. The scouting narrative engine is built with domain logic baked in.
13.02.2026 13:46
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β’ Head-to-head comparison tool with overlapping credible interval bars and league average benchmarks
β’ AI scouting agent that writes positional value reports, factoring in projection uncertainty, roster construction, and positional scarcity
β’ 1-click PDF 1-pagers for trade deadline prep/meetings
13.02.2026 13:46
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β’ Filterable player cards with triple slash lines, K%/BB%/ISO percentile circles, OPS credible intervals (in practice wRC+, wOBA, etc. are others to put in this area), this is illustrative for showcasing intervals relative to league average (or any average you choose)
13.02.2026 13:46
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Spring training is here.
Every analytics department has projections and looks at them in different ways.
Here's a quick concept app I put together for my students with the Rapid App Prototyping strategies I've been documenting: TLDR, ingest full-season player projections and make them usable.
13.02.2026 13:46
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Note: I am not a hockey analyst so had to do some research. I am sure there's much cooler stuff you can do here!
For the rink I ingested this pdf into claude and extracted key measurements before building out in D3
hockeymanitoba.ca/wp-content/u...
Good luck to all entering :)
12.02.2026 20:28
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Big Data Cup β Stathletes
If you're a student sitting on the fence, just start. You don't need a perfect submission. You need a question and the willingness to get your hands dirty with some great data.
The competition is open to undergrads, grad students, and independents. Link below.
stathletes.com/big-data-cup
12.02.2026 20:28
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