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      Hopper

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      Buscas relacionadas: Avaliações da empresa Hopper | Vagas da empresa Hopper | Salários da empresa Hopper | Benefícios da empresa Hopper
      Entrevistas da empresa HopperEntrevistas do cargo de Data Scientist da empresa HopperEntrevista da empresa Hopper


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      Entrevista para Data Scientist

      30 de set. de 2024
      Candidato(a) sigiloso(a) à entrevista
      Santa Monica, CA
      Nenhuma oferta
      Experiência neutra
      Entrevista com nível médio de dificuldade

      Candidatura

      Candidatei-me online. O processo levou 1 dia. Fui entrevistado pela Hopper (Santa Monica, CA) em set. de 2024

      Entrevista

      Sketchy. basically they scheduled and deleted calls for the roles. I had one and then they said they paused hiring but then have another role online. Not sure what’s going on there

      Perguntas de entrevista [1]

      Pergunta 1

      Intro call. my previous work etc
      Responder à pergunta

      Outras avaliações de entrevista de vagas de Data Scientist da empresa Hopper

      Entrevista para Data Scientist

      24 de abr. de 2024
      Candidato(a) sigiloso(a) à entrevista
      Montreal, QC
      Nenhuma oferta
      Experiência neutra
      Entrevista com nível médio de dificuldade

      Candidatura

      Fiz uma entrevista na empresa Hopper (Montreal, QC).

      Entrevista

      complete a task, on what must be a common use case for them. It was given as a short open ended assignment with a clear dataset. I felt like it was a fair task, however didn't allow for me to showcase many skills

      Perguntas de entrevista [1]

      Pergunta 1

      Explain my analysis, how do I think I could have done better.
      Responder à pergunta

      Entrevista para Data Scientist

      22 de fev. de 2022
      Candidato(a) sigiloso(a) à entrevista
      Nenhuma oferta
      Experiência negativa
      Entrevista com nível médio de dificuldade

      Candidatura

      Candidatei-me online. Fiz uma entrevista na empresa Hopper.

      Entrevista

      I saw the Glassdoor reviews noting the job postings are "fake", but wanted to give benefit of the doubt - big mistake. First off, the recruiter's salary band was lower than my current salary, and I made it clear I'd definitely want at least as much as I currently make - I figured I could negotiate later, and focused my energy on understanding the company and seeing if its a good fit. Recruiter noted next step would be call with hiring manager who they call "revenue leader". I got an email from the recruiting coordinator there would be a data challenge. I figured why not, its good practice for the sake of learning. I've listed the questions below for everyone to see what to expect. I got asked when I'd submit the assignment, then the morning after I submitted it, the position was magically placed "on hold", despite the recruiter noting during the initial call that they were looking to hire someone within the month. Everyone, listen to the reviews - Hopper isn't looking to hire, they're looking to mine free ideas via these take home challenges! They don't want you, they want your IDEAS, for FREE! The questions cover product ideation, hypothesis testing and experiment design, and modeling - basically anything they could want ideas for. It was a great learning experience to solve the problems, and to realize that if people on Glassdoor are saying a company is using their take home challenges to mine ideas and waste candidate time, they really are doing that - trust the reviews! Luckily I received other offers I'm very happy with so good riddance.

      Perguntas de entrevista [1]

      Pergunta 1

      Part 1: Product Ideation and Hypotheses Can you come up with 1-3 hypotheses/ideas that could increase the % of shoppers who convert? Now, pick the hypothesis that you think is most impactful. Can you quantify the potential revenue impact or value of this change? You'll need to make some assumptions. If we build x feature, what 4 main KPIs would you look at in order to measure the health of feature x? Part 2: Data Analysis and Interpretation We tested 4 tip variants compared to the control. The variants appeared either pre- or post- booking and as variable amount options or a toggle. Our most important metric is total revenue per user. Which variant performed best? If you were leading this experiment and these were the findings, what would be your next step? Part 3: Modeling As the provider of the Price Freeze product, Hopper has full autonomy on the pricing, structure and terms of each Price Freeze. Imagine that as a Data Scientist, your task is to provide a framework for structuring/pricing Price Freezes dynamically in order to maximize revenue. What do you think are the important drivers of success that should be tuned in order to achieve your goal? Given the drivers you've listed above: how would you model net revenue as a function of those drivers? Now, imagine you start building this net revenue model so you can predict the best Price Freeze to offer the user. You have the ability to deploy one or many models into production and observe how users interact with the Price Freezes you offer them. How do you design the experiment? What are you trying to learn? What does success look like? How do you progress, given the various potential outcomes?
      Responder à pergunta
      13

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