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I applied via Referral and was interviewed in Apr 2023. There were 2 interview rounds.
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I applied via campus placement at Vellore Institute of Technology (VIT) and was interviewed before Jul 2022. There were 4 interview rounds.
There was an aptitude test with 30 questions to complete within 45 min.
3 Coding questions to complete within 1hr.
I applied via Campus Placement and was interviewed before Mar 2023. There were 3 interview rounds.
Two basic programming questions (30 min) and reasoning/aptitude questions
Use SQL query with WHERE clause to pull data from a table based on a time interval.
Use SQL query with SELECT statement to specify the columns you want to retrieve.
Add a WHERE clause with the condition for the time interval, using appropriate date/time functions.
Example: SELECT * FROM table_name WHERE timestamp_column BETWEEN 'start_time' AND 'end_time';
To maximize sales on a state level, focus on market research, targeted marketing strategies, strong customer service, and strategic partnerships.
Conduct market research to understand the local consumer behavior and preferences
Implement targeted marketing strategies based on the research findings
Provide excellent customer service to build loyalty and attract repeat business
Form strategic partnerships with local business...
I applied via LinkedIn and was interviewed in Jul 2024. There were 3 interview rounds.
Assignment on credit risk
Question on Probability and basic aptitude questions
Model Gini is a measure of statistical dispersion used to evaluate the performance of classification models.
Model Gini is calculated as twice the area between the ROC curve and the diagonal line (random model).
It ranges from 0 (worst model) to 1 (best model), with higher values indicating better model performance.
A Gini coefficient of 0.5 indicates a model that is no better than random guessing.
Commonly used in credit
XGBoost model is trained by specifying parameters, splitting data into training and validation sets, fitting the model, and tuning hyperparameters.
Specify parameters for XGBoost model such as learning rate, max depth, and number of trees
Split data into training and validation sets using train_test_split function
Fit the XGBoost model on training data using fit method
Tune hyperparameters using techniques like grid search
Python coding question and ML question
I have 8 years of experience in data science, with a focus on machine learning and predictive modeling.
8 years of experience in data science
Specialize in machine learning and predictive modeling
Worked on various projects involving big data analysis
Experience with programming languages such as Python and R
I have worked on developing machine learning models for predictive maintenance in the manufacturing industry.
Developed machine learning algorithms to predict equipment failures in advance
Utilized sensor data and historical maintenance records to train models
Implemented predictive maintenance solutions to reduce downtime and maintenance costs
Central Limit Theorem states that the sampling distribution of the sample mean approaches a normal distribution as the sample size increases.
The Central Limit Theorem is essential in statistics as it allows us to make inferences about a population based on a sample.
It states that regardless of the shape of the population distribution, the sampling distribution of the sample mean will be approximately normally distribut...
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