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Kubeflow
Globant @ Medellín - Colombia
Sept 2020
JUAN CAMILO DÍAZ
4.5 años en Globant
Acerca de mí ...
Juan Camilo Díaz Ortega
Big Data Architect at Globant
Data & Analytics Studio
Kubeflow
Why it is so painful to deploy
Machine Learning workflows?
Kubeflow Machine Learning Workflow
Gathering data
Data pre-processing
Researching the model that will be
best for the type of data
Training and testing the model
Evaluation
Kubeflow Machine Learning Workflow - Real World
Kubeflow Machine Learning Workflow
Kubeflow Machine Learning Workflow
Kubeflow Machine Learning Workflow
Containers, Kubernetes.
What are we talking about ?
Kubeflow Containers
Containers are technologies that allow you to package and isolate
applications along with the entire runtime environment, that is, with
all the files that Containers require to run
Allows you to move the application that is inside the container
between the environments (development, test, production, etc.),
without losing any of its functions.
Kubeflow Containers
Kubeflow Kubernetes
Kubernetes (also known as k8s or "kube") is an open-source system
for automating deployment, scaling, and management of
containerized applications. Container orchestration platform.
In other words, you can cluster together groups of containers, and
Kubernetes helps you easily and efficiently manage those clusters.
Kubernetes clusters can span hosts across on-premise, public,
private, or hybrid clouds. For this reason, Kubernetes is an ideal
platform for hosting cloud-native applications that require rapid
scaling
Kubeflow Kubernetes
Orchestrate containers across multiple
hosts.
Scale containerized applications and
their resources on the fly
Control and automate application
deployments and updates
Health-check and self-heal your apps
with autoplacement, autorestart,
autoreplication, and autoscaling.
DefinitionKubeflow
Kubeflow is an open source Kubernetes-native platform for developing,
orchestrating, deploying, and running scalable and portable machine learning
workloads
Portable Machine Learning Stack
The Kubeflow project is dedicated to making deployments of machine learning
(ML) workflows on Kubernetes simple, portable and scalable.
https://www.kubeflow.org/docs/about/kubeflow/
Kubeflow componentsKubeflow
Kubeflow Changing the dev and deployment process
Kubeflow Machine Learning Workflow
Kubeflow Agenda
Kubeflow Components
ksonnetKubeflow
https://ksonnet.io/
ksonnetKubeflow
https://ksonnet.io/
Jsonnet library
A data templating language
Central DashboardKubeflow
Kubeflow user interfaces (UIs)
MetadataKubeflow
Help Kubeflow users understand
and manage their machine
learning workflows
MetadataKubeflow
Jupyter NotebooksKubeflow
Using Jupyter notebooks in
Kubeflow
Jupyter NotebooksKubeflow
Using Jupyter notebooks in
Kubeflow
Jupyter NotebooksKubeflow
Jupyter NotebooksKubeflow
PipelinesKubeflow
Kubeflow Pipelines is a platform for
building and deploying portable and
scalable end-to-end ML workflows,
based on containers.
Code that performs one step in the
Pipeline. In other words a
containerized implementation of an
ML task.
PipelinesKubeflow
A pipeline is a description of an
ML Workflow
It runs a containers which
provide portability, repeatability
and encapsulation, which is able
to decouples the execution
environment to code runtime.
PipelinesKubeflow
PipelinesKubeflow
PipelinesKubeflow
PipelinesKubeflow
Frameworks for TrainingKubeflow
MPI Operator
Tools for Serving ML Models - KFServingKubeflow
Tools for Serving ML Models - Seldon Core ServingKubeflow
Tools for Serving ML Models - BentoKubeflow
Katib - Hyperparameter TuningKubeflow
Hyperparameters are the variables that
control the model training process. For
example:
● Learning rate.
● Number of layers in a neural
network.
● Number of nodes in each layer.
Katib - Hyperparameter TuningKubeflow
Katib - Hyperparameter TuningKubeflow
Katib - Hyperparameter TuningKubeflow
Google Cloud Demo
Where I can Start ?
Cloud Computing - Cloud Providers
12 months of popular free services
+
$200 credit to explore Azure for 30 days
+
Always free 25+ services
https://azure.microsoft.com/en-us/free/
12 months free services
+
Short-term free trial offers start from the date
you activate a particular service
+
Always free, free tier offers do not expire and
are available to all AWS customers
https://aws.amazon.com/free/
12 months free services
+
$300 free credit
+
Always free products, which provides limited
access to many common Google Cloud
resources, free of charge.
https://cloud.google.com/free
https://docs.microsoft.com/en-us/azure/ https://cloud.google.com/docs https://docs.aws.amazon.com/index.html
Kubeflow
Kubeflow resourcesKubeflow
https://www.kubeflow.org/
https://www.kubeflow.org/docs/
Getting started with Kubeflow
¿Seguimos en contacto?
@jcamilodo https://www.linkedin.com/in/jcamilodo/
Cloud & Big Data
THANK YOU

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Kubeflow: Machine Learning en Cloud para todos