Job Highlights

AI-extracted key information

The Data Science Engineer Intern at Dropbox will work within the Customer Strategy Organization, gaining hands-on experience in designing, building, and maintaining data pipelines. The role involves collaborating with data scientists and business stakeholders to ensure data quality and support analytics and decision-making processes.

Experience Level

Entry Level

Education Requirements

bachelor degree

AI-powered analysis • Data extracted from job description
Dropbox logo

Data Science Engineer Intern (Summer 2026)

DropboxRemote - US: All locationsEngineering & Technical

Posted 4 days ago

Full-Time

Employment Type

Remote

Work Location

About This Role

Role Description

As a Dropbox Data Engineer Intern in the Customer Strategy Organization

(CSO),

you’ll be part of a top-notch learning experience working alongside experienced individuals from diverse backgrounds. You’ll have a dedicated Dropboxer mentoring you every step of the way as you build foundational and practical data engineering skills.

Our goal is to create a robust and impactful learning experience. You can expect to learn how modern data platforms and pipelines are designed, built, and operated to support analytics, data science, and business decision-making across our revenue, marketing, and product teams. We're all about feedback, so anticipate continual guidance refining your approach. And while you're forging your path, we're here to ensure you bond with like-minded interns, discover mentors, and lay the bricks for an expansive professional network.

We will work with you to accommodate your school end and start dates, culminating in a minimum of a 12-week long internship.

In this role, you will work with a wide range of data sources—including customer surveys, support tickets, call transcripts, and product usage data—to help design, build, and maintain reliable data pipelines and datasets. You will gain hands-on experience with data ingestion, transformation, and quality validation.

You are a self-starter with a strong affinity for problem-solving, a solid foundation in programming and data concepts, and an eagerness to learn scalable, production-ready data systems. You bring a curious, detail-oriented mindset and are excited to experiment with new tools, technologies, and engineering patterns.

Responsibilities

Design, build, and maintain data pipelines that ingest and process structured and unstructured data sources such as surveys, support tickets, call transcripts, and product usage data.

Develop and experiment with scalable data processing workflows that support downstream analytics, machine learning, and large language model

(LLM)

use cases.

Transform, validate, and model large, multi-dimensional customer behavior and usage datasets to ensure they are reliable, well-structured, and analytics-ready.

Partner with data scientists, analysts, and business stakeholders to enable clear understanding and effective use of data through well-defined datasets, documentation, and data quality standards.

Document data pipelines, schemas, and engineering best practices, and share learnings within the team to help promote a strong, data-driven culture at Dropbox.

Collaborate proactively with stakeholders across Customer Experience and Success to understand business needs, translate requirements into technical data solutions, and support accurate and timely data delivery.

Requirements

Currently enrolled as an undergraduate

(sophomore

or above) or graduate student, with an expected graduation date of 2027 or later, majoring in Computer Science, Engineering, Information Systems, Data Engineering, or a related technical field.

Strong written and verbal communication skills, with the ability to explain technical concepts clearly and collaborate effectively with both technical and non-technical partners.

Familiarity with core data engineering concepts, including data ingestion, transformation, and storage workflows.

Good programming skills in Python, with experience using libraries commonly used for data processing and pipeline development

(e.g.,

pandas, PySpark, or similar).

Preferred Qualifications

Experience Working With Sql And Querying Large Datasets In Relational Or Cloud-based Data Warehouses.

Basic familiarity with data modeling concepts

(e.g.,

dimensional models, schemas) and data quality or validation practices.

Compensation

US Pay Range

$7,500

$7,500 USD

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