Machine Learning Guide

MLA 019 Cloud, DevOps & Architecture

Jan 13, 2022
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Episode notes
1
Introduction
00:00 • 2min
2
How to Productize and Deploy a Machine Learning Model
02:03 • 4min
3
Machine Learning and Data Science - What Are the Popular Tools Out There?
06:20 • 2min
4
Devops and Machine Learning
08:43 • 3min
5
Devops - What's the Difference?
11:17 • 4min
6
Debops vs Architecture - What's the Role of Architecture in Machine Learning?
15:30 • 3min
7
Taking on a Devops as a Role Is Too Big of a Pill to Swallow
18:02 • 3min
8
M L Engineers, Collaboration Is the Kue to Debops Working Together
21:21 • 2min
9
The Landscape of Debops Tools
23:26 • 2min
10
The Game Changer in Ops
25:15 • 4min
11
Terraform Over Sk Ord Cloud Formation?
29:42 • 5min
12
Doctor if E Containers Are the Way to Go
34:21 • 3min
13
Cubernetes vs a W Ess
37:17 • 3min
14
Cubernets - The Benefits of Using Cubernettes
40:28 • 3min
15
How to Scale a Google Scale Container?
43:22 • 3min
16
Using Lamda to Deploy Containers
46:34 • 3min
17
The Pros and Cons of Cubernetes
49:24 • 6min
18
Is There a Bias in Machine Learning?
55:11 • 2min
19
Open Source Machine Learning Pipe Lining Tooling
57:15 • 5min
20
You Don't Want to Leak Your Keys
01:02:42 • 3min
21
Continuous Integration Continues Deployment
01:05:17 • 4min
22
Cloud Vr Gaming Without a PC
01:08:57 • 3min
23
Do Doctor Compose, Go Based Under the Hood.
01:11:29 • 3min