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Secure AI Model Deployments & Lifecycles
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$1,550

Secure AI Model Deployments & Lifecycles

coursera
coursera

coursera

1.符合資格者將於出貨後三個工作日陸續發送交易訊息通知。2.點數將於廠商出貨後,隔天起算110天後陸續確認發送。3.國際商家之商品金額及回饋點數依據將以商品未稅價格為準。4.國際商家之商品金額可能受匯率影響而有微幅差異。5.禮品卡支付以及使用未授權優惠碼不符合贈點資格。6.點數發送依據及返點上限將以「訂單總金額」計算(不含運費及稅額),不論訂單中有多少商品,於LINE購物皆視為只購買一商品(金額為當筆訂單所有商品加總金額),亦即點數回饋計算並非以coursera實際購買商品數量拆分計算 。7. 同6說明,訂單完成後的顯示金額可能包含部分運費或稅金,可返點金額將以系統回傳金額為準 8.若於商家App下單,不符合LINE購物導購資格。
商品描述

商品描述

If model rollouts feel risky, monitoring is an afterthought, and updates make you nervous, you’re not alone. As AI moves from prototype to production, the stakes rise: model supply chains, promotion workflows, and runtime behavior need guardrails, not just good intentions. This course is your blueprint for shipping with confidence by baking security into every phase of the AI Model lifecycle. You’ll learn to choose the right deployment strategy for your risk profile, enforce provenance and approvals with a model registry, and wire continuous monitoring for data/feature drift, performance, and safety signals. We also cover securing updates with signed artifacts, CI/CD policy gates, and rapid, auditable rollback. ML engineers, MLOps practitioners, and DevOps teams work together to ensure AI models move smoothly from development to production. ML engineers focus on building and training models, MLOps practitioners streamline and automate the model lifecycle, and DevOps teams manage infrastructure and deployment. Together, they create a reliable, scalable, and efficient pipeline for delivering AI solutions that perform consistently in real-world environments. Git & CI/CD basics, Docker or managed ML platform experience, working knowledge of Python ML workflows and environment/package management. By the end, you’ll ship behind structured change control, track lineage from dataset to container, and respond quickly when reality (or your threat model) changes. Whether you run on Kubernetes, serverless, or managed ML platforms, the practical flows, templates, and hands-on exercises in this course help you harden deployments without slowing delivery; turning ad-hoc launches into repeatable, secure lifecycles from commit to canary to continuous oversight.

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