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Showing posts with the label EXL Data Analyst Interview question in Bengaluru

Meesho PySpark Interview Questions for Data Engineers in 2025

Meesho PySpark Interview Questions for Data Engineers in 2025 Preparing for a PySpark interview? Let’s tackle some commonly asked questions, along with practical answers and insights to ace your next Data Engineering interview at Meesho or any top-tier tech company. 1. Explain how caching and persistence work in PySpark. When would you use cache() versus persist() and what are their performance implications? Answer : Caching : Stores data in memory (default) for faster retrieval. Use cache() when you need to reuse a DataFrame or RDD multiple times in a session without specifying storage levels. Example: python df.cache() df.count() # Triggers caching Persistence : Allows you to specify storage levels (e.g., memory, disk, or a combination). Use persist() when memory is limited, and you want a fallback to disk storage. Example: python from pyspark import StorageLevel df.persist(StorageLevel.MEMORY_AND_DISK) df.count() # Triggers persistence Performance Implications : cache() is ...

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EXL Interview question and answer for Power BI Developer (3 Years of Experience)

EXL Interview Experience for Power BI Developer (3 Years of Experience) I recently appeared for an interview at EXL for the role of Power BI Developer . The selection process consisted of three rounds: 2 Technical Rounds 1 Managerial Round Here, I’ll share the key technical questions I encountered, along with my approach to answering them. SQL Questions 1️⃣ Write a SQL query to find the second most recent order date for each customer from a table Orders ( OrderID , CustomerID , OrderDate ). To solve this, I used the ROW_NUMBER() window function: sql WITH RankedOrders AS ( SELECT CustomerID, OrderDate, ROW_NUMBER () OVER ( PARTITION BY CustomerID ORDER BY OrderDate DESC ) AS RowNum FROM Orders ) SELECT CustomerID, OrderDate AS SecondMostRecentOrderDate FROM RankedOrders WHERE RowNum = 2 ; 2️⃣ Write a query to find the nth highest salary from a table Employees with columns ( EmployeeID , Name , Salary ). The DENSE_RANK() fu...

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