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I chose data science because of its potential to solve complex problems and make meaningful insights from data.
Fascination with the power of data to drive decision-making
Interest in solving real-world problems using data-driven approaches
Passion for exploring patterns and trends in data
Desire to contribute to advancements in technology and innovation
Excitement about the interdisciplinary nature of data science
Examples:...
Recommendation, personalization, fraud detection, search algorithms are used in e-commerce companies.
Recommendation algorithms suggest products based on user behavior and preferences.
Personalization algorithms customize the user experience based on their past behavior.
Fraud detection algorithms identify and prevent fraudulent transactions.
Search algorithms help users find products based on their search queries.
Clusteri...
Market basket analysis algorithm is used to identify the relationship between products frequently purchased together.
It is a data mining technique.
It helps in identifying the co-occurrence of items in a transactional database.
It is used in retail, e-commerce, and marketing industries.
It helps in cross-selling and up-selling products.
Example: If a customer buys bread, there is a high probability that they will also buy ...
Logical reasoning, deduction reasoning
I applied via Naukri.com and was interviewed in Dec 2024. There was 1 interview round.
I applied via Company Website and was interviewed in Sep 2024. There were 2 interview rounds.
Basic mathematical and resoning questions.
Developed a predictive model for customer churn in a telecom company
Collected and cleaned customer data including usage patterns and demographics
Used machine learning algorithms such as logistic regression and random forest
Evaluated model performance using metrics like accuracy and AUC-ROC curve
Random forest is an ensemble learning method that uses multiple decision trees to make predictions, while a decision tree is a single tree-like structure that makes decisions based on features.
Random forest is a collection of decision trees that work together to make predictions.
Decision tree is a single tree-like structure that makes decisions based on features.
Random forest reduces overfitting by averaging the predic...
A cost function is a mathematical formula used to measure the cost of a particular decision or set of decisions.
Cost function helps in evaluating the performance of a model by measuring how well it is able to predict the outcomes.
It is used in optimization problems to find the best solution that minimizes the cost.
Examples include mean squared error in linear regression and cross-entropy loss in logistic regression.
posted on 11 Sep 2024
I applied via Company Website and was interviewed in Aug 2024. There was 1 interview round.
RAG pipeline is a data processing pipeline used in data science to categorize data into Red, Amber, and Green based on certain criteria.
RAG stands for Red, Amber, Green which are used to categorize data based on certain criteria
Red category typically represents data that needs immediate attention or action
Amber category represents data that requires monitoring or further investigation
Green category represents data that...
Confusion metrics are used to evaluate the performance of a classification model by comparing predicted values with actual values.
Confusion matrix is a table that describes the performance of a classification model.
It consists of four different metrics: True Positive, True Negative, False Positive, and False Negative.
These metrics are used to calculate other evaluation metrics like accuracy, precision, recall, and F1 s...
DSA and ML, AI, Coding question
I applied via Recruitment Consulltant and was interviewed in Apr 2024. There was 1 interview round.
SQL, Python coding …
I applied via campus placement at Maharaja Sayajirao University (MSU), Baroda and was interviewed in Oct 2022. There were 2 interview rounds.
KPIs of Classification Model
Accuracy: measures the proportion of correct predictions
Precision: measures the proportion of true positives among predicted positives
Recall: measures the proportion of true positives among actual positives
F1 Score: harmonic mean of precision and recall
ROC Curve: plots true positive rate against false positive rate
Confusion Matrix: summarizes the performance of a classification model
Left join returns all records from left table and matching records from right table. Right join returns all records from right table and matching records from left table.
Left join keeps all records from the left table and only matching records from the right table
Right join keeps all records from the right table and only matching records from the left table
Left join is denoted by LEFT JOIN keyword in SQL
Right join is d...
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