@lindavivah: Let’s see how much we can fit in 60 seconds⏰😅… High-level overview of the ML pipeline. Machine learning isn’t just training a model. A production ML lifecycle typically looks like this: 1️⃣ Define the problem & objective 2️⃣ Collect and (if needed) label data 3️⃣ Split into train / validation / test sets 4️⃣ Data preprocessing & feature engineering 5️⃣ Train the model (forward pass + backpropagation in deep learning) 6️⃣ Evaluate on held-out data to measure generalization 7️⃣ Hyperparameter tuning (learning rate, architecture, etc.) 8️⃣ Final testing before release 9️⃣ Deploy (batch inference or real-time serving behind an API) 🔟 Monitor for data drift, concept drift, latency, cost, and reliability 1️⃣1️⃣ Retrain when performance degrades Training updates weights. Evaluation measures performance. Deployment serves predictions. Monitoring keeps the system healthy. It’s not linear. It’s a loop. And once you move beyond a single experiment, that loop becomes a systems problem. At scale, the challenge isn’t just modeling … it’s building reliable, scalable infrastructure that supports the entire lifecycle. #edutok
lindavivah
Region: US
Thursday 12 February 2026 14:14:58 GMT
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Greg Powell :
Brilliant!
2026-02-16 20:17:19
2
Thomaz Hun :
I thought preprocessing is after train model, because if preprocessing exec 1st mean data is memorising not learning, can do data cleaning B4 train
2026-02-13 03:00:41
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lovisa.rocket :
Thanks girl!!
2026-05-02 18:30:21
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Ai | Data :
Thank you for this
2026-04-14 03:24:13
1
Yugan Nimsara :
great
2026-03-18 18:39:12
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KwbA :
Batch prediction still the best
2026-03-27 13:27:54
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Trailers View :
I waited until the end of the video
2026-02-12 14:20:25
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Ola Silva(software dev) :
☺️☺️true
2026-03-24 00:00:08
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revopswithdee :
Thank you for this!
2026-07-08 02:01:08
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cwong56 :
Brilliant
2026-03-23 15:48:40
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aladdin :
♥️♥️♥️
2026-02-23 23:17:24
1
Muhammad Fahad :
🥰🥰🥰
2026-03-22 20:48:06
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user6320847312351 :
Thanks for the excellent video. Do you know where can i find a ready ml pipeline to learn from (for beginners)?
2026-03-01 19:11:33
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