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Quant,Logical Reasoning and Data interpretation
I have a Bachelor's degree in Business Administration with a focus on marketing.
Bachelor's degree in Business Administration
Focus on marketing
Completed coursework in market research and consumer behavior
I appeared for an interview before Mar 2024.
Python programming, problem solving
I applied via Recruitment Consulltant and was interviewed in Mar 2023. There were 2 interview rounds.
To connect ADLS Gen2 with Databricks, you can use Azure Blob Storage and set up a linked service in Databricks.
Create an Azure Blob Storage account in the Azure portal
Set up a linked service in Databricks to connect to the Azure Blob Storage account
Use the Azure Blob Storage account as the storage account for Databricks to access ADLS Gen2 data
C5i interview questions for popular designations
I applied via Approached by Company and was interviewed before May 2023. There were 3 interview rounds.
Testing on Ms Excel, powerpoint
I applied via Naukri.com and was interviewed before Jan 2023. There were 3 interview rounds.
I applied via Internshala and was interviewed before Oct 2021. There were 2 interview rounds.
Experienced Business Analyst with expertise in data analysis, process improvement, and project management.
5+ years of experience in business analysis
Proficient in SQL and data visualization tools
Led successful projects resulting in cost savings and increased efficiency
Collaborated with cross-functional teams to identify and implement process improvements
Strong communication and presentation skills
I applied via Recruitment Consultant and was interviewed in Dec 2018. There were 3 interview rounds.
I chose Data Science field because of its potential to solve complex problems and make a positive impact on society.
Fascination with data and its potential to drive insights
Desire to solve complex problems and make a positive impact on society
Opportunity to work with cutting-edge technology and tools
Ability to work in a variety of industries and domains
Examples: Predictive maintenance in manufacturing, fraud detection
Linear Regression is used for predicting continuous numerical values, while Logistic Regression is used for predicting binary categorical values.
Linear Regression predicts a continuous output, while Logistic Regression predicts a binary output.
Linear Regression uses a linear equation to model the relationship between the independent and dependent variables, while Logistic Regression uses a logistic function.
Linear Regr...
Confusion matrix is a table used to evaluate the performance of a classification model.
It is a 2x2 matrix that shows the number of true positives, false positives, true negatives, and false negatives.
It helps in calculating various metrics like accuracy, precision, recall, and F1 score.
It is useful in identifying the strengths and weaknesses of a model and improving its performance.
Example: In a binary classification p...
No, confusion matrix is not used in Linear Regression.
Confusion matrix is used to evaluate classification models.
Linear Regression is a regression model, not a classification model.
Evaluation metrics for Linear Regression include R-squared, Mean Squared Error, etc.
KNN is a non-parametric algorithm used for classification and regression tasks.
KNN stands for K-Nearest Neighbors.
It works by finding the K closest data points to a given test point.
The class or value of the test point is then determined by the majority class or average value of the K neighbors.
KNN can be used for both classification and regression tasks.
It is a simple and easy-to-understand algorithm, but can be compu
Random Forest is an ensemble learning method that builds multiple decision trees and combines their outputs to improve accuracy.
Random Forest is a type of supervised learning algorithm used for classification and regression tasks.
It creates multiple decision trees and combines their outputs to make a final prediction.
Each decision tree is built using a random subset of features and data points to reduce overfitting.
Ran...
I have worked on various projects involving data analysis, machine learning, and predictive modeling.
Developed a predictive model to forecast customer churn for a telecommunications company.
Built a recommendation system using collaborative filtering for an e-commerce platform.
Performed sentiment analysis on social media data to understand customer opinions and preferences.
Implemented a fraud detection system using anom...
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I applied via Campus Placement and was interviewed before Feb 2021. There were 2 interview rounds.
The duration of C5i interview process can vary, but typically it takes about less than 2 weeks to complete.
based on 6 interviews
Interview experience
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