Top 6 ML Engineer Interview Questions (with Snapchat MLE)

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  • Опубліковано 14 чер 2024
  • Ace your machine learning interviews with Exponent’s ML engineer interview course: bit.ly/3TfCZej
    This video covers key machine learning concepts and challenges, offering insights into optimization algorithms, data preparation techniques, problem framing, model deployment, and handling irregularities during training. It covers the distinctions between batch, mini-batch, and stochastic gradient descent, emphasizes the importance of feature scaling for algorithm efficiency, explores the nuances of classification vs. regression problems, and discusses strategies for updating models in production due to performance degradation or concept drift.
    Additionally, the video provides solutions for managing exploding gradients, including gradient clipping, batch normalization, and architectural adjustments.
    Chapters (Powered by ChapterMe)
    00:00 - Intro
    00:39 - Training and testing data in machine learning
    02:35 - Different algorithms for training models
    07:07 - Gradient-based machine learning with different types of problems
    11:15 - Monitoring model performance against training set
    13:29 - Concept drift and exploding gradients in machine learning
    16:20 - Machine learning interview insights and examples
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КОМЕНТАРІ • 3

  • @tryexponent
    @tryexponent  3 місяці тому

    Ace your machine learning interviews with Exponent’s ML engineer interview course: bit.ly/3TfCZej

  • @CrusadeVoyager
    @CrusadeVoyager 3 місяці тому

    Gr8 interview ❤

  • @sophiophile
    @sophiophile 10 днів тому

    Isn't stochastic gradient descent a method of introducing randomness into the parameter updates?