MLOps: CI/CD for Data Science

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MLOps: CI/CD for Data Science

Info Support
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Opleiderscore: starstarstarstarstar_border 8,3 Info Support heeft een gemiddelde beoordeling van 8,3 (uit 15 ervaringen)

Tip: meer info over het programma, prijs, en inschrijven? Download de brochure!

Startdata en plaatsen
placeVeenendaal
25 feb. 2026 tot 27 feb. 2026
Toon rooster
event 25 februari 2026, 09:00-16:00, Veenendaal
event 26 februari 2026, 09:00-16:00, Veenendaal
event 27 februari 2026, 09:00-16:00, Veenendaal
Beschrijving

Meer weten over de onderwerpen die aan bod komen en de vereiste voorkennis? Neem vrijblijvend contact met ons op.

Professionalize your ML process by experimenting using MLOps principles, and building, versioning, deploying, and monitoring models.

Description

AI offers solutions to problems that were previously complex. We can deploy models to perform a task more simply or accurately, automatically detect anomalies in massive datasets, or support individuals with audio/visual impairments in their communication.

For all these goals, a robust process is required. We need to be able to trust that our models are of good quality and can distinguish between models. Quickly and stably updating a model based on new information is essential. To truly benefit from AI, we need to treat our ML solutions just like ou…

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Veelgestelde vragen

Er zijn nog geen veelgestelde vragen over dit product. Als je een vraag hebt, neem dan contact op met onze klantenservice.

Nog niet gevonden wat je zocht? Bekijk deze onderwerpen: Data Science, Databases, Big Data, Datavisualisatie en Data Analyse.

Meer weten over de onderwerpen die aan bod komen en de vereiste voorkennis? Neem vrijblijvend contact met ons op.

Professionalize your ML process by experimenting using MLOps principles, and building, versioning, deploying, and monitoring models.

Description

AI offers solutions to problems that were previously complex. We can deploy models to perform a task more simply or accurately, automatically detect anomalies in massive datasets, or support individuals with audio/visual impairments in their communication.

For all these goals, a robust process is required. We need to be able to trust that our models are of good quality and can distinguish between models. Quickly and stably updating a model based on new information is essential. To truly benefit from AI, we need to treat our ML solutions just like our software.

This hands-on training teaches you how to develop a model with repeatable processes. You'll learn to apply proven DevOps techniques within a machine learning solution. You register all aspects of your training and experiments in a structured way. You version your model so that a new version is only taken into production if it performs well. You learn about orchestration, such that tasks are executed in the correct order and at the right time. You learn how to deploy, test, and monitor a model in production. All relevant components are stored with version control, making everything reproducible and shareable. You apply everything you've learned by building a proof-of-concept machine learning solution yourself. The training concludes with a case study in which you bring together the learned material.

Subjects

Day 1

  • Introduction
  • What is MLOps
  • MLOps in an organisation
  • Tracking ML components

Day 2

  • Versioning ML models
  • Orchestrating workflows
  • Deploying a model

Day 3

  • Monitoring a model in production
  • Case study
  • Real-life example
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Er zijn nog geen veelgestelde vragen over dit product. Als je een vraag hebt, neem dan contact op met onze klantenservice.

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