Level

Later

Senior Data Platform Engineer

Later is hiring a Senior Data Platform Engineer in Boston, San Francisco and Vancouver. It pays $125k-$205k a year and Level rates it ; you can apply on Level.

AI in this role

Design and evolve the data platform infrastructure and pipelines to support AI-powered products and analytics teams.

bigqueryawsgcpdbt
ai-agentsdata-engineeringinfrastructureetl

Later is the world’s most intelligent influencer marketing company, built to give brands the confidence to create unforgettable campaigns. By combining real creator relationships, trusted intelligence, and expert guidance, Later removes fear and guesswork from one of marketing’s most visible investments.

Built on a native, AI-powered platform and more than a decade of proprietary data—including billions of social interactions, impressions, and $2.4B+ in verified influencer-driven purchases—Later helps teams understand what will work before they launch.

By combining trusted insight with expert guidance, Later removes guesswork from influencer marketing, enabling brands to choose the right creators, execute fully managed campaigns, and drive meaningful growth across awareness, engagement, and revenue. Trusted by leading enterprise brands including Nike, Wayfair, Unilever, and Southwest Airlines, Later bridges creativity and performance so campaigns don’t just look good—they deliver results. Learn more at later.com.

About this position

As a Senior Data Platform Engineer at Later, you'll own the foundation our data ecosystem runs on. You'll design, build, and evolve the infrastructure, backend services, and platform capabilities that move data from source to decision, and that help engineers, analysts, and data scientists do their best work.

This is a data engineering role with a platform mindset. Our analytics platform runs on GCP and BigQuery, and our operational databases live in AWS. You'll shape how data moves between them, modernize what we have, and get our data ready for the AI-powered products we're building. You'll treat the platform as a product and the teams who depend on it as your customers.

This role is for someone who likes building the system more than the individual report or model. It isn't a traditional ETL/ELT role focused on SQL, dashboards, and pipeline maintenance, and it isn't an ML engineering or data science role. You'll build the data foundation that makes AI work, and other teams will build on top of it.

What you'll be doing

Build, own, and evolve the data platform

  • Design and own scalable infrastructure across ingestion, orchestration, storage, transformation, and consumption, including our BigQuery warehouse and lakehouse. Make architectural decisions, explain the tradeoffs, and modernize the parts that have outgrown their original design.
  • Build reliable batch and real-time pipelines and dbt transformation layers. Evolve our orchestration (GCP-native tools plus our custom orchestrator) and shape our ingestion strategy, including how we evaluate Fivetran against custom connectors.
  • Spot weaknesses in the platform and drive the fixes. Mentor other engineers and raise the technical bar.

Engineer backend systems and keep them reliable

  • Build the APIs, services, and integrations that move data in and out of the platform, including secure, cost-aware data movement between GCP and AWS. Manage infrastructure as code and automate deployment with CI/CD.
  • Build observability, data quality checks, and access controls, and optimize performance and cost. Create reusable tooling and standards that make the right way the easy way.

Build the foundation for AI

  • Make trusted company data accessible for analytics, machine learning, and AI applications, including LLMs and AI agents. Invest in data quality, metadata, lineage, governance, and freshness.
  • Design the platform to absorb new AI use cases without major rework, and partner with AI/ML, product, and engineering teams on what they need.

What you'll bring

Experience

  • 6+ years in data engineering, backend engineering, or platform engineering, with a track record of owning production data systems at scale and improving their reliability, performance, and cost.
  • Strong backend programming skills (Python or similar), solid SQL, and experience with dbt or a similar transformation framework.
  • Hands-on cloud experience, ideally GCP and BigQuery, and comfort working across more than one cloud.
  • Experience with infrastructure as code, CI/CD, and workflow orchestration.
  • Experience with batch and streaming architectures, and a working understanding of security, access control, and data governance.
  • The judgment to make architectural decisions and explain the tradeoffs to technical and non-technical partners.

Nice to have

  • Kubernetes, and experience migrating or redesigning orchestration systems.
  • Managed ingestion tools like Fivetran.
  • Experience building internal platforms or tooling that other engineers adopt.
  • Data foundations for AI, such as vector stores, feature pipelines, or governed LLM access.

Our approach to compensation:
We take a market-based & data-driven approach to compensation. We leverage data from trusted third-party compensation sources to help us understand the market value of a role based on function, level, geographic location, and scope. We evaluate compensation bi-annually, including performance and market-related factors.

Our salaries are benchmarked against market Total Cash Compensation for the geographic location of our job posting. Compensation for some roles is structured as On Target Earnings (OTE = base + commission/variable) while for others it is structured as Salary only. The salary range listed for this role reflects the zones that applies to the location of this posting.

To comply with local legislation and ensure transparency, we share salary ranges on all job postings. Skills, experience and other factors help determine the final salary we offer which may vary from the original range posted.

Additionally, all permanent team members are eligible to participate in various benefits plans as part of their overall compensation package. 

Salary range:
For candidates located in the US: $125,000-205,000 USD
For candidates located in the Canada: $110,000-160,000 CAD

We're committed to building an inclusive, supportive place where you can do the best and most rewarding work of your career. If this sounds like you, even if you don't check every box, we'd love to hear from you.

Where we work:

We have offices in Boston, MA; Vancouver, BC; and Vancouver, WA. For select positions, we are open to hiring fully remote candidates. We post our positions in the location(s) where we are open to having the successful candidate be located. 

Diversity, inclusion, and accessibility:

At Later, we are committed to fostering a culture rooted in an inclusion-first mindset at every level of the company, embracing the importance of hiring and building teams for culture add rather than culture fit. We openly build and maintain unbiased hiring, pay, and promotion practices to create a foundation for an equitable workplace, paving the way for systemic change.

We are committed to creating a diverse environment and are proud to be an equal opportunity employer. All applications will receive consideration for employment without regard to race, color, religion, gender, gender identity or expression, national origin, disability, or age. Please let us know if you require any accommodations or support during the recruitment process.

How we rate this

Senior Data Platform Engineer at Later rates 65 out of 100 for how much of the daily work is AI. That makes it Works on AI (AI Level 3 of 4). The level is about AI in the job, not seniority.

Classification

Works on AI. The daily work is on AI products, without building the model.

  1. ●●●● Builds AI80 to 100
  2. ●●●○ Works on AI60 to 79
  3. ●●○○ Uses AI40 to 59
  4. ●○○○ Little AI0 to 39

Levels come from how often the tools, models and workflows of the role are named in the posting itself. Open the description and count.

Prepare for this job

A free preview built only from this posting: what it asks for, what you could be asked in an interview, and how to adjust your resume.

Skills and AI tools this role asks for

AI agentsData EngineeringInfrastructureETLBigqueryAWSGoogle Clouddbt

Questions you could be asked

  1. How do you decide when an AI agent can act on its own versus asking for approval first?
  2. Tell me about a project where data engineering was part of your work. What did you do?
  3. Tell me about a project where infrastructure was part of your work. What did you do?
  4. Tell me about a project where etl was part of your work. What did you do?
  5. Walk me through how you've used Bigquery in your day-to-day work.

Adapt your resume

  • List these exact terms on your resume: AI agents, Data Engineering, Infrastructure, ETL, and Bigquery. An applicant tracking system matches the wording, not the idea.
  • Attach one line of real, concrete experience to at least one of them. A tool named with nothing behind it rarely survives a human read.
  • Show where AI is part of your daily process, not a one-off project. This role expects it to be a running habit.

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