LLM parameter efficient fine tuning.
Science Interview Questions
43,861 science interview questions shared by candidates
What is your background in Data Science?
What is your faverable culture?
What is your 5 year plan?
Strengths
1. How do you use NN to reduce dimensionality? 2. Can you model time series as a linear regression model? 3. a) Can you use resampling methods like bagging to estimate the max of a population? b) Why is bagging a variance reduction scheme? 4. Why is the use of minibatch to minimize a function computationally more efficient than any other methods? 5.Gambler's ruin problem. 6. Assume that in a time series, some data are missing. How do you handle that? A. average out the existing values. Okay, so you want to average out the existing values, but how do you define the the new time series as a single function? A. Use characteristic or indicator function.
Medium to Complex Algorithm Questions. Basic ML questions
what is type 1 and type 2 error. What parameters needed for a T-test?
Machine Learning questions(logistic regression, cross-entropy loss derivation)
What is normalisation and why is it used for
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