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      Colloquio per Data Scientist

      25 ago 2024
      Dipendente anonimo
      Hyderabad

      Altre recensioni di colloqui per Data Scientist presso BizViz Technologies

      Colloquio per Data Scientist

      8 mag 2025
      Candidato anonimo a colloquio
      Bengaluru
      Nessuna offerta
      Offerta accettata
      Esperienza positiva
      Colloquio difficile

      Candidatura

      Ho presentato la mia candidatura tramite segnalazione di un dipendente. La procedura ha richiesto 4 settimane. Ho sostenuto un colloquio presso BizViz Technologies (Hyderabad) nel mese di mar 2021

      Colloquio

      Solve a data science problem in 3 days. Share the solution with the company. If the solution is correct then 2 rounds of interview. One round would be technical and the subsequent round would be HR round.

      Domande di colloquio [1]

      Domanda 1

      About weights and biases in Neural networks.
      Rispondi alla domanda
      Esperienza negativa
      Colloquio nella media

      Candidatura

      Ho sostenuto un colloquio presso BizViz Technologies (Bengaluru)

      Colloquio

      Stage 1: HR/Recruiter Screening Call (15–30 minutes) Objective: Assess communication skills, motivation, and culture fit. Questions: Why are you interested in this role? Tell us about a recent data project you worked on. What are your salary expectations and notice period? Stage 2: Technical Assessment (Take-Home or Online Test) Objective: Evaluate coding ability, data wrangling, and problem-solving skills. Format: Could include a case study or dataset analysis with deliverables (code, notebook, and brief report). Typical Tasks: Data cleaning and EDA. Feature engineering. Model building (e.g., regression, classification). Result interpretation and communication. Stage 3: Technical Interview ( 45 minutes) Objective: Deep dive into technical knowledge and approach. Topics: Python, SQL queries, Pandas, NumPy. Machine learning algorithms and model evaluation. Probability, statistics, and hypothesis testing. Business case discussion or live coding. Sometimes includes a whiteboard/diagramming session. Stage 4: Case Study or Business Problem Discussion Objective: Assess analytical thinking and ability to connect technical work to business outcomes. Example Format: Present a problem (e.g., churn prediction or sales forecasting). Ask candidate to explain how they would approach the solution, what data they would need, potential pitfalls, etc. Stage 5: Final Interview / Cultural Fit Objective: Gauge alignment with company values and team dynamics. Interviewers: Team lead, manager Topics: Past experiences and team collaboration. Ethical considerations in data use. Career aspirations and long-term goals.

      Domande di colloquio [1]

      Domanda 1

      How do you handle missing data in a dataset? Explain the difference between apply(), map(), and applymap() in Pandas. What is the difference between INNER JOIN, LEFT JOIN, and FULL OUTER JOIN? How do you find duplicates in a table? How do you interpret a p-value? How do you prevent overfitting in a machine learning model? Explain precision, recall, and F1-score. When would you use a decision tree over logistic regression? How would you measure the success of a recommendation system? Imagine you're given messy, real-world data with missing values and outliers. Walk me through how you'd clean and prepare the data.
      Rispondi alla domanda