The questions in the first technical interview will be mostly based on your resume. You will also be given a programming question.
Machine Learning Engineer Interviews
Machine Learning Engineer Interview Questions
Companies rely on machine learning engineers to help design and improve the systems that allow their software to improve on its own, rather than being specifically programmed. During the interview process, be prepared to be tested heavily on both computer science and data science knowledge with an emphasis on recognizing patterns and trends. A bachelor's degree in computer science or a related field will be required.
Top Machine Learning Engineer Interview Questions & How to Answer
Question #1: What are the most important algorithms, programming terms, and theories to understand as a machine learning engineer?
Question #2: How would you explain machine learning to someone who doesn't understand it?
Question #3: How do you stay up to date with the latest news and trends in machine learning?
8,207 machine learning engineer interview questions shared by candidates
The interview process consists of 1 aptitide + 2 technical rounds (No HR round) Aptitude round - Total of 80 questions ( 78 + 2 coding ( medium-level )) First Technical Interview :- The interviewer was very friendly and asked some basic questions about python and machine learning and AI (regularization, dropout layers etc.) and some questions regarding my project Second Technical Interview :- This interview was more focused on my work that I had done in my internships. The interviewer also asked some questions on a machine learning case study and in the end asked some easy coding questions to solve
1) Explain Decision trees, how how would a tree split numerical data.
Tell me about yourself. Which algorithm did you work on your project? Have you chosen another algorithm to do it? and what was that?
Machine learning algorithms. Difference between bias and variance. How do you train a model from the start.
What is LSTM and GRU
Describe your favourite ML algorithm. I described SVM's operating principle.
4) What is loss function and activation function? explain this W.R.T back propagation in NN
What is your favorite machine learning method? Describe it to me and explain why you like it?
Asked some basic Python questions about syntax and generators. Take-home assessment was about 5 hours long and consisted of a supervised ML problem. Incorporated skills that they looked for in an ML SWE.
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