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Jadavpur University Research Intern Interview Questions and Answers

Updated 15 Oct 2023

Jadavpur University Research Intern Interview Experiences

1 interview found

Interview experience
5
Excellent
Difficulty level
Hard
Process Duration
Less than 2 weeks
Result
Selected Selected

I applied via Referral and was interviewed before Oct 2022. There were 3 interview rounds.

Round 1 - Resume Shortlist 
Pro Tip by AmbitionBox:
Keep your resume crisp and to the point. A recruiter looks at your resume for an average of 6 seconds, make sure to leave the best impression.
View all tips
Round 2 - Aptitude Test 

60 questions, 45 minutes and general questions about research

Round 3 - One-on-one 

(1 Question)

  • Q1. Be confident about the research problem in mind

Interview questions from similar companies

Interview experience
4
Good
Difficulty level
Moderate
Process Duration
2-4 weeks
Result
Not Selected

I applied via Company Website and was interviewed in Mar 2024. There was 1 interview round.

Round 1 - Technical 

(13 Questions)

  • Q1. How do you train semi supervised machine learning models?
  • Ans. 

    Train semi supervised machine learning models by using a combination of labeled and unlabeled data.

    • Start by training a model on a small amount of labeled data

    • Use the trained model to make predictions on the unlabeled data

    • Incorporate the predictions into the training set and retrain the model

    • Repeat the process until the model reaches a satisfactory level of performance

  • Answered by AI
  • Q2. What are the parametric types of machine learning?
  • Ans. 

    Parametric types of machine learning are algorithms that make assumptions about the functional form of the relationship between inputs and outputs.

    • Parametric models have a fixed number of parameters that are learned from the training data.

    • Examples include linear regression, logistic regression, and linear SVM.

    • They are often simpler and faster to train compared to non-parametric models.

    • Parametric models are suitable for...

  • Answered by AI
  • Q3. What are the types of Machine Learning?
  • Ans. 

    Types of Machine Learning include supervised learning, unsupervised learning, semi-supervised learning, reinforcement learning, and self-supervised learning.

    • Supervised Learning: The model is trained on labeled data.

    • Unsupervised Learning: The model is trained on unlabeled data.

    • Semi-Supervised Learning: A combination of labeled and unlabeled data is used for training.

    • Reinforcement Learning: The model learns through trial...

  • Answered by AI
  • Q4. Explain Eigen value
  • Ans. 

    Eigen value is a scalar associated with a square matrix that represents how a transformation stretches or compresses space along its eigenvectors.

    • Eigen values are solutions to the characteristic equation det(A - λI) = 0, where A is the matrix, λ is the eigen value, and I is the identity matrix.

    • They represent the factor by which the eigenvector is scaled during the transformation.

    • Eigen values can be real or complex numb...

  • Answered by AI
  • Q5. What is Eigen Vector
  • Ans. 

    Eigen vector is a vector that does not change its direction when a linear transformation is applied to it.

    • Eigen vectors are used in linear algebra to understand the behavior of linear transformations.

    • They represent directions along which a linear transformation has a simple effect, such as scaling.

    • Eigen vectors are associated with eigenvalues, which represent the scaling factor of the eigenvector.

    • For example, in a 2x2 ...

  • Answered by AI
  • Q6. What is the maths behind PCA
  • Ans. 

    PCA is a mathematical technique used for dimensionality reduction by finding the principal components of a dataset.

    • PCA involves calculating the eigenvectors and eigenvalues of the covariance matrix of the data.

    • The eigenvectors represent the directions of maximum variance in the data, while the eigenvalues indicate the amount of variance along each eigenvector.

    • The principal components are the eigenvectors corresponding ...

  • Answered by AI
  • Q7. If you are given a small dataset of 300 samples, what would you choose over a neural network with more number of hidden layers or a neural network with one hidden layer. Justify your explanation in terms o...
  • Ans. 

    For a small dataset of 300 samples, a neural network with one hidden layer would be more suitable for better accuracy.

    • A neural network with one hidden layer is simpler and less prone to overfitting on a small dataset.

    • With a small dataset, a complex neural network with more hidden layers may lead to overfitting and poor generalization.

    • A neural network with one hidden layer can capture the basic patterns in the data effe...

  • Answered by AI
  • Q8. Can a neural network accept complex number as input?
  • Ans. 

    Yes, a neural network can accept complex numbers as input.

    • Neural networks can be designed to accept complex numbers as input by using complex-valued weights and activations.

    • Complex-valued neural networks have been used in applications such as signal processing and image recognition.

    • Complex numbers can represent both magnitude and phase information, making them useful for certain types of data.

    • Complex-valued neural netw...

  • Answered by AI
  • Q9. What is kmeans algorithm, Explain it?
  • Ans. 

    kmeans algorithm is a clustering algorithm that partitions data into k clusters based on similarity.

    • Divides data points into k clusters based on distance from centroid

    • Iteratively assigns data points to nearest centroid and updates centroids

    • Converges when centroids no longer change significantly

    • Commonly used in machine learning for clustering data points

  • Answered by AI
  • Q10. What are the evaluation metrics?
  • Ans. 

    Evaluation metrics are used to measure the performance or effectiveness of a system, project, or process.

    • Evaluation metrics can include quantitative measures such as accuracy, precision, recall, F1 score, and AUC-ROC.

    • They can also include qualitative measures such as user satisfaction, usability, and user engagement.

    • Evaluation metrics help in assessing the success of a project or system and identifying areas for improv...

  • Answered by AI
  • Q11. Machine learning vs Deep Learning
  • Ans. 

    Machine learning is a subset of artificial intelligence that focuses on developing algorithms to make predictions based on data, while deep learning is a subset of machine learning that uses neural networks to learn from large amounts of data.

    • Machine learning involves developing algorithms that can learn from and make predictions or decisions based on data.

    • Deep learning is a subset of machine learning that uses neural ...

  • Answered by AI
  • Q12. How do you select k value in kmeans algorithm?
  • Ans. 

    Selecting k value in kmeans algorithm involves using techniques like elbow method and silhouette score.

    • Use the elbow method to find the point where the rate of decrease sharply shifts, indicating the optimal k value.

    • Calculate silhouette score for different k values and choose the one with the highest score.

    • Consider domain knowledge and the specific problem requirements when selecting k value.

    • Experiment with different k...

  • Answered by AI
  • Q13. How do you calculate precision & recall for n x n confusion matrix?
  • Ans. 

    Precision and recall can be calculated using values from a confusion matrix.

    • Precision = TP / (TP + FP)

    • Recall = TP / (TP + FN)

    • Where TP = True Positive, FP = False Positive, FN = False Negative

    • For an n x n confusion matrix, sum the values in each row and column to get TP, FP, and FN for each class

  • Answered by AI

Interview Preparation Tips

Topics to prepare for IIT Guwahati Junior Research Fellow interview:
  • Based on the project

Skills evaluated in this interview

Interview experience
4
Good
Difficulty level
-
Process Duration
-
Result
-
Round 1 - Technical 

(1 Question)

  • Q1. Basics of biology education
Interview experience
3
Average
Difficulty level
-
Process Duration
-
Result
-
Round 1 - Technical 

(2 Questions)

  • Q1. Completely on projects
  • Q2. Signals and systems basics

Interview Preparation Tips

Interview preparation tips for other job seekers - not related much i think u should have more responses

I applied via Company Website and was interviewed before Jan 2017. There were 5 interview rounds.

Interview Questionnaire 

1 Question

  • Q1. Salary

Interview Preparation Tips

Round: Resume Shortlist
Experience: Based on Work Experience

Round: Test
Experience: Biotechnology Screening Test

General Tips: Nice ,
Don't believe the fate,
Trust your hard work.
Get the Job easily.
Skills: Communication, Body Language, Problem Solving, Decision Making Skills
Duration: <1 week

Jadavpur University Interview FAQs

How many rounds are there in Jadavpur University Research Intern interview?
Jadavpur University interview process usually has 3 rounds. The most common rounds in the Jadavpur University interview process are Resume Shortlist, Aptitude Test and One-on-one Round.

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Jadavpur University Research Intern Interview Process

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