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      Búsquedas relacionadas: Opiniones sobre OpenTable | Ofertas de empleos en OpenTable | Sueldos en OpenTable | Beneficios en OpenTable
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      Entrevista de Data Engineer

      13 jun 2017
      Candidato de entrevista anónimo
      Sin oferta
      Experiencia negativa
      Entrevista normal

      Solicitud

      Acudí a una entrevista en OpenTable

      Entrevista

      The person, gave two python programs, which was solved within 35 minutes, The interviewer kept asking "Do you have any questions for me?", He was interviewing. Seems 1st time he was interviewing. After a day, got reply that not suitable. Seems the politics began at the interview level itself. This guy going to bring down the company for sure, the standards he is maintaining.

      Preguntas de entrevista [1]

      Pregunta 1

      python program
      1 respuesta

      Otras opiniones sobre las entrevistas para el puesto de Data Engineer en OpenTable

      Entrevista de Data Engineer

      25 feb 2026
      Candidato de entrevista anónimo
      Toronto, ON
      Sin oferta
      Experiencia negativa
      Entrevista fácil

      Solicitud

      Envié una solicitud electrónica. Acudí a una entrevista en OpenTable (Toronto, ON)

      Entrevista

      The screening went OK, and for the hiring manager interview, on the date and time that the interview was supposed to start, I received an email that said the interview was cancelled and they will reschedule. Then, on the rescheduled interview, the HM joined 7 minutes late and didn't even apologize. After passing the HM round, I did 2 more rounds: a coding challenge and the system design interview. I did solve the coding challenge quickly, and the system design was OK, and I answered most of the core questions related to the role, After that I was ghosted, not even having the decency to say what happened. They do not show any respect for someone who spends time tailoring their resume, preparing for the interviews and answering questions. Cancelling the interviews at the last minute, joining meetings late, and ghosting candidates.

      Preguntas de entrevista [4]

      Pregunta 1

      Recruiter / Screening Call Compensation alignment Location / hybrid willingness Right to work High-level experience match Questions she asked: Are you comfortable with hybrid in Toronto? Does the compensation range align? (118–130k + bonus + RSUs) Do you require visa sponsorship? Can you walk me through your background? When are you available for next steps?
      Responder pregunta

      Pregunta 2

      Hiring Manager / Technical Screening Real data engineering ownership Pipeline reliability understanding Product sense Communication clarity Depth vs buzzwords About OpenTable challenges: What do you think our main data challenges are? How would you measure data quality? How do you define tiered datasets? How do you store large-scale analytics data? Why lakehouse vs database? How would you design analytics for user behavior?
      Responder pregunta

      Pregunta 3

      Coding Round (Python + SQL) Read logs line-by-line and count distinct error messages efficiently. Parsing logic Data structures (dict vs set) Handling large files Memory efficiency Clarity under pressure Follow-up: What if file is 10GB? How would you process at scale? Streaming vs batch? Avoid reprocessing same message? SQL Questions Q1: Report total party size booked per restaurant. Tested: JOIN GROUP BY SUM vs COUNT Alias usage Q2: For each restaurant, report quantity and revenue in its first booking year. Tested: MIN(year) per group Subqueries GROUP BY correctness Aggregation logic Joining back to bookings
      Responder pregunta

      Pregunta 4

      System Design Round This was the deepest evaluation. Main Question: Design a pipeline that ingests, processes, and stores restaurant impression data at petabyte scale. They evaluated: A) Requirements clarification Logged-in vs logged-out? What metrics? What fields? Real-time vs batch? B) Architecture Messaging layer Storage format Bronze/silver/gold Partitioning strategy Processing tools C) Specific probing questions: What tools do you use to consume from Kafka? How do you avoid consuming the same message twice? How do you ensure idempotency? How do you enforce schema? What if producer changes data type? What format do you store in? How do you handle late-arriving data? What’s your Kafka partitioning strategy? How do you backfill historical data? How do you monitor pipeline health? This was testing: Streaming fundamentals Schema evolution Correctness guarantees Scale reasoning Tradeoffs Practical experience depth
      Responder pregunta

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