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Data Engineer

Alt Platform Inc

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Unlock alternative asset value: trade, value, securely store collectible cards.

$346M total funding raised
$155k - $165kFULL TIMERemote · US182 employeesPosted Aug 27
pythondata engineeringsqlairflowdagsterpandaspolarspysparkweb scrapingawsllm extractionsystems designdata pipelinesorchestrationdata warehousing

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Describe your next role, cut the noise

Alt is unlocking the value of alternative assets, starting with the $5 B trading-card market. We let collectors buy, sell, vault, and finance their cards in one place and we are backed by leaders at Stripe, Coinbase, Seven Seven Six, and pro athletes like Tom Brady and Giannis Antetokounmpo. Our next frontier is real-time pricing at scale—the Alt Value that powers every trade, loan, and product on the platform.

The Role

Alt Value is our moat. It is only as good as the data underneath it — and that data lives on dozens of external marketplaces and auction houses that have no interest in making it easy for us to get.

That's this job. You own the pipelines that scrape, normalize, and land every transaction and listing that feeds our pricing model. When a comparable sale closes on eBay or at a major auction house, how fast it shows up in Alt Value, and whether it shows up correctly, is your call and your consequence. Pricing decisions, cash advance terms, market analytics, and every dashboard in the company sit downstream of you.

The metric you own: Data Coverage. Supporting KPIs are pipeline latency, uptime, and source coverage.

What You'll Own:

  • The ingestion layer. Design, optimize, and own the pipelines that scrape, process, and ingest transaction and listing data from major auction houses and marketplaces. Scraper to orchestrator to warehouse, end to end.

  • Knowing before we do. Build the monitoring and alerting that tracks latency, uptime, and coverage across every source. A source going quiet should page you, not surprise a pricer three days later.

  • Making it cheaper and steadier. Modernize storage and processing, cut manual intervention out of the loop, and optimize for cost, performance, and reliability. Incremental and evidence-based, not a rewrite.

  • The consumers. Partner with pricing, ML, product, and analytics to understand how the data actually gets used, and deliver it clean and standardized enough that nobody downstream is writing defensive code around your output.

How You'll Use AI Here:

We don't want to hear that you use Claude every day. Everyone does. We want to know what you've built with it. Concretely, in this role:

  • Point an agent at a site that just changed its markup and have it propose the parser fix, run it against a fixture set, and open the PR

  • Build a triage loop over the orchestrator — cross-reference a failed DAG against logs and warehouse state, diagnose the cause, and hand you a ranked list instead of a wall of red

  • Use LLM extraction for the long tail of low-volume sources where a bespoke scraper will never pay for itself

  • Put an MCP server over the warehouse so a coverage question is a sentence, not another one-off query

  • Use Claude Code or Cursor as the default way you work through a migration or a backfill, not as autocomplete

If you've built agents, written skills or MCP servers, wired up connectors, or shipped internal tooling your team actually depends on — lead with that.

What You Bring:

  • 3-4 years in data engineering or a closely adjacent seat

  • Strong Python, 3+ years hands-on, and real large-scale processing with dataframe technologies (Pandas, Polars, PySpark, or similar)

  • Orchestration in your hands, not your resume. Airflow, Dagster, or a comparable DAG system — you've built on it, been paged for it, and cleaned up after it

  • A pipeline you owned end to end in the past two years. Not a pipeline you contributed to. One that was yours when it broke

  • Solid SQL for analysis and transformation

  • Startup experience. You understand the pace, and you've worked somewhere the roadmap changed under you

  • A pragmatic bias. Value delivered incrementally over the perfect rebuild

Bonus: web scraping at scale (Selenium, Puppeteer, Beautiful Soup). AWS. LLM-based extraction and processing. You collect, or you have opinions about the collectibles market.

How We'll Interview You:

We'll be specific so you can prepare. Before any of it: download the app, put a card up, make a bid, or put a card up for sell. Every round assumes you've used the product, and we expect your point of view to sharpen as you go.

1. Recruiter screen - 30 minutes Come ready to talk about the metric you own today, why Alt specifically, and how you're actually using AI. We'll answer your questions and align on comp.

2. Hiring manager with Dae, Head of Data — 30 minutes. Be ready to go deep on one pipeline you owned end to end: the systems design, what you owned versus the team, where it broke, and what came out the other side.

3. Coding screen — 45 minutes. A working session on a data problem close to what this role actually does.

4. Systems design — 60 minutes. Design an ingestion system under real constraints. We'll push back on at least one of your choices on purpose — how you take that matters as much as the design.

5. Cross-functional — 60 Mins How you work with the people downstream of your data.

6. Leore, our founder and CEO — 30 minutes. Everyone who joins Alt meets Leore. Come with a point of view on what you'd go after first.

7. Reference check(s) — 15 minutes with a former manager(s)

What we offer:
  • We cover 85% of your medical, dental, and vision, and up to 50% for dependents. HSA/FSA available

  • Flexible PTO that people actually take

  • Parental leave at full salary

  • $200/month wellness + $100/month home office stipend

  • Free DoorDash membership, because dinner shouldn't be a decision

  • Remote-first (for most positions), with WeWork access when you want a room with other humans

  • 401(k)

  • Alt Equity to all full-time employees