Joined September 2016
22 Photos and videos
Are you a PhD student with a passion for machine learning and an eye for innovation? Join Netflix as an ML Intern in 2025 and help us redefine entertainment. Apply now or share with someone who’d love an opportunity #OnlyatNetflix explore.jobs.netflix.net/car…

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Join the Netflix Algorithms Engineering team! We’re looking for great machine learning applied researchers and ML software engineers to help shape the future of entertainment, spanning personalization for recommendations, search, messaging, and growth. Links below.
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Machine Learning Research Scientist/Engineer: jobs.netflix.com/jobs/310834…

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Machine Learning Software Engineer: jobs.netflix.com/jobs/310056…

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We're now accepting applications for Machine Learning research internships at Netflix Research for summer 2024, including in our personalization, recommendations, and search teams. Find out more and apply here: jobs.netflix.com/jobs/300628…

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A good reward function is critical for your recommender, bandit, or RL model to perform well. Check out our #RecSys2023 industry track paper on how we built a system to make it easier to test new reward definitions for our recommendation models. dl.acm.org/doi/10.1145/36049…
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The slides from our #RecSys2023 talk on "Reward Innovation for long-term member satisfaction" are now available here: slideshare.net/JiangweiPan/r…

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Miss the #RecSys2023 IERI workshop talk on "Recommendation Modeling with Impression Data at Netflix" from @panjiangwei? Don't worry, the slides are now available here: slideshare.net/JiangweiPan/r…

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Also for those attending #RecSys2023 in-person, come hear @panjiangwei give a presentation on the work during Session 17 starting at 4:05 today.
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Feedback loops in Recommender Systems aren't mythical like bigfoot; they're real. Check out our #RecSys2023 industry track paper on lessons learned in detecting and addressing them at Netflix. dl.acm.org/doi/10.1145/36049…
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For those attending #RecSys2023 today in-person, its also being presented as a poster by Ding Tong. Drop by if you want to learn more.
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Learn about using RL to optimize recommendation pipelines pipelines in the #RecSys2023 paper by Kabir Nagrecha. It will be presented in session 10 at 2PM today. Paper here: dl.acm.org/doi/10.1145/36049…
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Join our Mark (Ko-Jen) Hsiao at the #RecSys2023 VideoRecSys workshop for a presentation on "From Stranger Things to Your Favorite Things: Netflix's Recommendation Evolution". The talk will be at 4:35 today in room 327.
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For those attending #RecSys2023, come see a talk from our @panjiangwei on "Recommendation Modeling with Impression Data at Netflix" at the LERI workshop at 2:00.
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Netflix Research retweeted
22 Aug 2023
🤖️ Are LLMs good Conversational Recommender Systems (CRS) ? We (@McAuleyLabUCSD and @NetflixResearch) let LLMs generate movie names directly in response to natural-language user requests. Key observations in the experiments:
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Next in our series of Media ML blog posts, we talk about a couple of approaches that we developed at Netflix to algorithmically infer scene changes and boundaries, using video and audio features: netflixtechblog.com/detectin…
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Don’t miss the “Practical Bandits - An Industry Perspective” tutorial from #TheWebConf2023, featuring insights from our very own Ying Li and Devesh Parekh. Check out the materials here: sites.google.com/view/practi…
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Our third post in the series about how Netflix uses Machine Learning and Computer Vision to make better media is up. We go deep on causal impact of successful visual components of promotional artwork on our member’s choosing experience. netflixtechblog.medium.com/c…

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Netflix Research retweeted
I'm organizing a workshop on Machine Learning for Streaming Media at the #webconf2023 along with my colleagues - @pchandarr, Vladan Radosavljevic, Amit Goyal and Lan Luo. #MachineLearning #Research
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