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      Machine Learning Engineer Interview

      Mar 11, 2025
      Anonymous employee
      Islamabad, Islamabad
      Accepted offer
      Positive experience
      Difficult interview

      Application

      I applied online. The process took 2 weeks. I interviewed at Tensor Labs (Islamabad, Islamabad) in Jan 2025

      Interview

      One of the best interview processes I've been through, appeared 2 times for interview and got selected the 2nd time. The reason for appearing the first time was their professionalism and the guidance from the person taking the interview right after the call on what things I can improve and what pathway i should take.

      Interview questions [1]

      Question 1

      Majority questions were around tabular machine learning and data understanding.
      Answer question

      Other Machine Learning Engineer Interview Reviews for Tensor Labs

      Machine Learning Engineer Interview

      Nov 19, 2025
      Anonymous Interview Candidate
      Islamabad
      No offer
      Positive experience
      Difficult interview

      Application

      I applied through a staffing agency. The process took 1 week. I interviewed at Tensor Labs (Islamabad) in Oct 2025

      Interview

      There are a total of 2 technical rounds, and the 2nd interview is conducted by the CEO himself, and it is technically challenging. Interview is online and consists of 40 minutes.

      Interview questions [1]

      Question 1

      Use of Dropout while training a model and once trained, how to use it during test process. Complete ML workflow process: The techniques used for Preprocessing a dataset Which model to use (based on Classification, Regression etc. problem) Training, Validation and Testing Deployment Search for questions that can be asked in similar scenario Classification/Regression algorithms in detail: Which algo to use in a specific use case and why? Transformer architecture Bias, Variance, Overfitting, Underfitting: Ways to overcome Under and Over fitting Scenario: If a Model shows a graph with a lot of variations (up and down), it refers more towards underfitting as model is unable to understand the comple and data and is making assumptions. Part 2 Good Python concepts: Typecasting args and kwargs yield FastApi Database: How to handle large datasets. User provides their data and how you will create a profile from this. Profiling means # of columns/rows, empty values, other stats about the data
      Answer question

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