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RAPIDSFire

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Rating
★★★★★
4.9
from
13 reviews
This podcast has
15 episodes
Language
English
Publisher
RAPIDS
Explicit
No
Date created
2020/12/08
Latest episode
2021/10/14
Average duration
39 min.
Release period
25 days

Description

Follow the RAPIDSFire podcast for a fresh take on data science. Hear from revolutionaries transforming data science on GPUs for scientific research, higher education, and the broader enterprise. Talks with open-source software maintainers, Kaggle grandmasters, practitioners, CUDA experts and many others keep you up-to-date on the most exciting developments. Let's discuss how to make your work better and faster. Hosted by Data Scientist Paul Mahler. Join the conversation and send feedback on Twitter @rapidsai

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RAPIDSFire Sports Spectacular 1 - Sam Moss and Cameron Weinert of Every Day is Saturday
2021/10/14
I talk with Sam Moss and Cameron Weinert about using data science to predict college football. We talk about feature engineering, following your passing, the role of analytics in sports and sports fandom, how to be an intelligent consumer of data science as a non-data scientist, and a lot more.  Everyday is Saturday on Spotify.  Everyday is Saturday on Apple.  Sam on Twitter.  Raw data on college football here at collegefootballdata.com
Marlene Mhangami on Python, Pivots, and Personal Growth (and RAPIDS on Windows)
2021/10/05
We talk with Marlene Mhangami, a director and chair of the Python Software Foundation, co-founder of coding education non-profit ZimboPy, someone that took a huge career pivot from pre-med to software engineering, and one of the folks that helped bring RAPIDS to Windows. We talk about changing careers, creativity and confidence in tech, and of course RAPIDS on Windows.  Marlene's home page https://marlenemhangami.com/ Marlene's blog post about RAPIDS on Windows https://medium.com/rapids-ai/running-rapids-on-microsoft-windows-10-using-wsl-2-the-windows-subsystem-for-linux-c5cbb2c56e04 Tutorial on using RAPIDS on Windows via WSL2 https://www.youtube.com/watch?v=jnEd3IDsF-I ZimboPy on github https://github.com/ZimboPy
Even Oldridge on Tabular Deep Learning and the Future of Recommender Systems
2021/09/08
This week we’re joined by Even Oldridge, Senior Manager, RecSys Platform Team at NVIDIA. We talk about Tabular Deep Learning, NVMerlin, how bookstores aren’t like recommender systems, his team’s recent repeat win in the ACM Recsys Challenge, the future of recommender systems and more. NVIDIA Merlin on the NVIDIA Developer Blog https://developer.nvidia.com/blog/tag/merlin/ NVIDIA Merlin blogs on Medium https://medium.com/nvidia-merlin Merlin on Github https://github.com/NVIDIA-Merlin/Merlin NVTabular Blogs https://developer.nvidia.com/blog/tag/nvtabular/ NVTabular on Github https://github.com/NVIDIA/NVTabular REES46 data set mentioned toward the end of the podcast https://rees46.com/en/datasets
Way of the Grandmaster 2 with Christof Henkel
2021/08/26
We talk with 4-time Kaggle winner Christof Henkel about how he got started in Kaggle, important skills for Kaggle success, his most memorable contests, his most recent victory, how an alien radio signal is like a bird call, climbing at the 2021 Olympics, and much more!  Christof's Kaggle Profile: https://www.kaggle.com/christofhenkel Christof's Twitter: https://twitter.com/kagglingdieter
Way of the Grandmaster with Chris Deotte
2021/08/05
We sit down and talk with 4x Kaggle Grandmaster Chris Deotte about his career, how he got started doing Kaggle, how you can get started doing Kaggle, feature engineering, the perks of AGI, and a lot more!  Chris on Kaggle: https://www.kaggle.com/cdeotte
Data Science, Social Science, and the Near Future of RAPIDS with John Zedlewski
2021/07/08
I sit down and talk with the new Director of Engineering for RAPIDS at NVIDIA, John Zedlewski about what economics can learn from machine learning practitioners, engineering challenges that ended up being harder than first thought, how increased automation will change the day-to-day work of data scientists, and much more. 
Simulating large-scale numerical models in natural science with Zahra Ronaghi and Christoph Keller
2021/06/25
I talk with Zahra Ronaghi, Engineering Manager of AI Infrastructure at NVIDIA and Christoph Keller, Atmospheric Chemist with the NASA Goddard Space Flight Center about their collaboration to bring GPU-accelerated data science to the study of air pollution. You can find their first blog on the collaboration here and their work around the atmospheric impact of COVID here. For more about GPU accelerated shape this blog is a good place to start.
Community, Whisky, Fitness, and Data Science with Jim Scott
2021/06/10
On this week’s episode, we have NVIDIA’s Head of Developer Relations, Data Science, Jim Scott. We talk about the data science of fine whiskey, data science for fitness, the “secret” of Kaggle Grand Masters (spoiler: it’s giving back to the community), learning and community resources as the future of data science, classic “paradoxes” in basic probability, and some great resources for being a better data scientist. Kaggle Grandmaster Youtube Interviews - Here’s the most recent sit down Jim did with the Kaggle Grand Masters of NVIDIA. https://www.youtube.com/watch?v=bHuww-l_Sq0 Data Science of the Day - we talk about this toward the end of the episode, and this is a GREAT resource to keep up-to-date with everything going on in data science. https://forums.developer.nvidia.com/c/ai-data-science/data-science-of-the-day/323/none Jim on Twitter: https://twitter.com/kingmesal Jim and I reminisce about the Birthday Paradox - here’s a good piece on it from Scientific American. Jim and I were way off on remembering how likely birthday sharing is in a small handful of people. https://www.scientificamerican.com/article/bring-science-home-probability-birthday-paradox/ Don’t let us get your goat talking about the Monty Hall Problem. This explainer shows how an example with a larger number of doors can help give more intuition about what’s actually happening by changing your guess. https://www.statisticshowto.com/probability-and-statistics/monty-hall-problem/ Cantor’s Diagonalization Theorem mentioned in passing. Here’s a link to the wikipedia article - if you aren’t familiar with it, you should check it out. https://en.wikipedia.org/wiki/Cantor%27s_diagonal_argument
Neural Nets, the History of Data Science, and Applied Spacial Analysis with John Murray
2021/03/23
This week I talk with John Murray. John has been a data scientist, a CTO, and a professor and has unique insight on the history of data science and where it is going. It’s a great episode and I hope you’ll enjoy! Links described in the episode: MurrayData on Github Fusion Data Science John’s GTC 2020 talk on flood relief
Pandas and Arrow with Wes McKinney
2021/02/16
Our guest this week in the one and only Wes McKinney, creator of Pandas and Apache Arrow. We have a great conversation about his career journey, funding and maintaining open-source software projects, his new company Ursa Computing, how Pandas grew from a passion project to the lingua franca of Python data science, and a lot more. 
Data Visualization at Scale with Allan Enemark and Bryan Van de Ven
2021/02/09
We sit down and talk with Allan Enemark, data viz lead for RAPIDS and Bryan Van de Ven, Senior Engineer and co-creator of Bokeh to talk about what GPUs are doing for the visualization of data sets across many different tools, and what the future holds for showing your audience what the data is saying.  Links to things discussed in the episode: Datashader Plotly HoloViz Bokeh Vis.gl JupyterCon Tutorial - check it out!  cuxfilter (pronounced "cu - crossfilter") - code on github Twitter accounts to follow to keep your finger on the pulse of the latest in data viz: https://twitter.com/DataVizSociety https://twitter.com/jonmmease https://twitter.com/AlbertoCairo https://twitter.com/visualisingdata https://twitter.com/Elijah_Meeks https://twitter.com/viegasf https://twitter.com/giorgialupi https://twitter.com/flowingdata https://twitter.com/infobeautiful
BlazingSQL with Felipe Aramburu and William Malpica
2021/01/20
Join me as I sit down with Felipe Aramburu and William Malpica as we talk about BlazingSQL's GPU-accelerated SQL queries, start-up life, the tech talent in Peru, things we used to hate about SQL and a lot more.  Give BlazingSQL a try at app.blazingsql.com and once you're convinced, and go here beta.blazingsql.com for their beta of the paid version that will give you access to very large GPU clusters. Thanks! 

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