Data Science & Machine Learning: Mock Interviews
Test your skills in Feature Engineering, ML Algorithms (XGBoost/Random Forest), Metrics (ROC/AUC), and Deep Learning.
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What you'll learn
Course Description
Importing a machine learning library in Python takes two seconds. But what happens when your model claims to be 99.9% accurate in training, but fails completely when deployed to production? Technical interviews for Data Science roles do not test your ability to copy and paste code; they test your statistical judgment. Do you know how to deal with an imbalanced dataset where 99% of the data belongs to a single class? Do you know when to optimize for Recall instead of Precision? The Data Science & Machine Learning: Mock Interviews course is designed to test your algorithmic problem-solving skills under pressure.
This course abandons generic coding trivia and throws you directly into the shoes of a Lead Data Scientist. Across four massive sets of rigorous, scenario-based case studies, you will face complex predictive challenges. First, you will tackle Data Preprocessing & Feature Engineering, figuring out how to handle missing data and prevent catastrophic "Target Leakage." Next, you will dive into the Algorithms, testing your ability to choose between Random Forests, SVMs, and XGBoost based on specific data constraints.
The exams get progressively more analytical as you move into Model Evaluation. The third section rigorously tests your ability to interpret Confusion Matrices, plot ROC/AUC curves, and evaluate goodness-of-fit (R-Squared). Finally, we cover the cutting edge: Deep Learning & NLP. You will be tested on the architecture of Convolutional Neural Networks (CNNs) for images, Word2Vec for text, and Transfer Learning. Every question features a detailed explanation to ensure you truly understand the math behind the machine.
Basic Info:
Course locale: English (India)
Course instructional level: Intermediate to Advanced
Course category: IT & Software
Course subcategory: Data Science
Who this course is for:
- Aspiring Data Scientists and Machine Learning Engineers preparing for technical interviews at FAANG or enterprise companies. Data Analysts looking to transition from basic SQL/Excel reporting into advanced predictive modeling. Software Engineers who want to understand the math and logic behind the AI models they are deploying.
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