Sprinklr Interview Questions (2026)
9 questions · 6 experiences · GeeksforGeeks (14) · LeetCode (1)
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Sprinklr Interview Experience for Product Engineer (On-Campus)
Sprinklr Interview Experience for On-Campus Internship
Sprinklr Interview Experience | On-Campus 2020 for FTE (Internship +Job)
Sprinklr Placement Interview Experience
Sprinklr Interview Experience for SDE FTE (On-Campus)
Sprinklr Internship Interview Experience (On-Campus)
Sprinklr Interview Experience | On-Campus
Sprinklr Interview Experience | Set 1 (On-Campus at IIT Kanpur)
#907 Sum of Subarray Minimums
Sprinklr Interview Experience SDE- Product Engineering
Sprinklr Interview Experience for SDET | 1.5 Years Experienced
Sprinklr Interview Experience for Frontend Engineer | Off-Campus
Sprinklr Interview Experience for Product Intern
Sprinklr Interview Experience For Product Engineering Internship (2024)
Sprinklr Interview Experience for SDE
Sprinklr Interview Experience for Product Engineer (On-Campus)
Question Details
Sprinklr visited our Campus for Placement for the 2023-24 session. The Recruitment Process had five rounds: Online Coding Round Technical Round 1 Technical Round 2 Technical Round 3 Cultural Fitment Round Online Coding Round, Platform: HackerEarth: There were three coding questions with scores, of 50,75 and 100, respectively. I do not precisely remember the questions, but for 75, It was a greedy sliding window question; for 100, it was a simple DP question where we had to take elements from either end, which increases the score by a given formula, and we have to return the maximum score. Those with scores > 100 were shortlisted for interviews. There were 12 candidates, and I was one of them.
Technical Round 1: The round was held on Microsoft Teams. After some brief introduction, I was presented with two questions, You are given a number N and a prime number C. You are given Q queries of the forms A, and B. You need to tell whether a number exists between A and B (inclusive) such that N*C is divisible by that number for all the Q queries.
Technical Round 2: Similar to round 1, after some brief introduction, we jumped to DSA. The exact question was this - https://leetcode.com/problems/last-moment-before-all-ants-fall-out-of-a-plank/ It was just the celebrity problem - https://www.geeksforgeeks.org/dsa/the-celebrity-problem/
Technical Round 3: I n this round, I was asked to implement vectors in C++, I was also asked to differentiate between a vector and an array, and then, I was asked to implement LRU Cache. Cultural Fitment Round: It was not an eliminatory round, questions revolved around the preferred tech stack, the work culture of Sprinklr and my journey so far. After a few hours of the last round, the final list of selected candidates came out and I was one of them.
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Sprinklr Interview Process Overview
The Sprinklr interview process typically includes a recruiter screen, one to two technical phone screens, and a 4-6 round on-site or virtual on-site loop. Each round serves a distinct calibration purpose: coding rounds measure correctness, code quality, and complexity reasoning; system design rounds measure architectural judgment at the appropriate level; behavioral rounds measure ownership, leadership scope, and collaboration. Reports tagged on LeakCode from 2024-2026 show Sprinklr runs a calibrated process consistent with industry norms for companies of its tier.
Difficulty calibration: Sprinklr coding rounds typically run medium difficulty with follow-up depth as the senior discriminator. System design rounds expect production-grade trade-off articulation at L4+ levels. Behavioral rounds expect quantified outcomes ("reduced p99 latency from 800ms to 120ms") rather than vague impact claims. The candidates who advance consistently demonstrate clear thinking out loud rather than perfect final answers.
How To Use Sprinklr Question Reports
Real candidate-reported interview questions are a calibration tool, not a memorization target. Sprinklr updates its question pool every 2-4 months; memorizing exact problems risks misleading you when the interviewer uses a variant. The high-leverage approach: identify the patterns that appear repeatedly in Sprinklr reports, practice those patterns on similar (not identical) problems, and use the reports to understand the interviewer's typical follow-up depth.
Filter the questions above by round type, difficulty, and recency. Focus first on reports from the past 6-12 months; older reports may reference questions that have since rotated out of Sprinklr's pool. Reports tagged with quantified difficulty and explicit round type are higher-signal than reports without those tags. The metadata filters help you build a focused study plan in 1-2 hours rather than 8-10 hours of unstructured browsing.
Common Sprinklr Interview Mistakes
Reports tagged "no hire" at Sprinklr consistently surface a few patterns: jumping into code without clarifying requirements, coding silently for extended periods, missing edge cases (empty input, single element, large input, overflow), producing working code the candidate cannot refactor when probed, and behavioral stories that use "we" instead of "I" diluting individual signal. Strong candidates explicitly avoid these patterns by following a consistent round template.
The single most predictive failure mode in recent reports: not asking clarifying questions. Interviewers are explicitly trained to weight this dimension. Strong candidates ask 3-5 clarifying questions even on problems that look obvious; weak candidates dive into implementation immediately. Strong candidates also verbalize their approach before writing code; weak candidates code in silence and lose the communication dimension of the round's calibration.