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Data Products builds and owns datasets end to end: from raw chain data through decoding to the 3000+ models and 4 petabytes we curate, share directly with customers, and replicate into their warehouses.
The role will focus on the lifecycle of building high quality data: orchestrating thousands of interdependent models, propagating schema changes without breaking downstream consumers, propagating corrections. That is a software architecture problem in a data domain. This role is a hybrid: a backend engineer who thinks in systems and contracts, working on data.
You will be the engineer we hand ambiguous product requirements to, and will come back with a design, a sequence, and work the team can pick up, while building the hardest parts yourself.
Dune's mission is to make onchain finance observable. We're the industry standard for onchain data: a blockchain data and intelligence provider that institutions, protocols, and analysts trust to understand the onchain world and the frontiers of finance. We deliver structured datasets, spanning stablecoins, tokens, lending, trading, and payments, from 130+ chains and counting, to 1,000+ industry leaders including Visa, WisdomTree, FINRA, the IMF, Bloomberg, Standard Chartered, Coinbase, Forbes, and the Financial Times.
We're a team of ~50, working together across Europe and eastern US timezones 🌍️. We believe in building open, verifiable data that lets individuals and institutions do deep research into ecosystems like Bitcoin, Ethereum, Solana, and many more.
We're backed by some of the world's best investors. In February 2022, we announced our Series B funding round led by Coatue and Union Square Ventures, an important milestone that let us double down on our mission.
If you want one of the highest impact jobs on the planet, come join our team.
Dune's Vision
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Data Products builds and owns datasets end to end: from raw chain data through decoding to the 3000+ models and 4 petabytes we curate, share directly with customers, and replicate into their warehouses.
The role will focus on the lifecycle of building high quality data: orchestrating thousands of interdependent models, propagating schema changes without breaking downstream consumers, propagating corrections. That is a software architecture problem in a data domain. This role is a hybrid: a backend engineer who thinks in systems and contracts, working on data.
You will be the engineer we hand ambiguous product requirements to, and will come back with a design, a sequence, and work the team can pick up, while building the hardest parts yourself.
Design and build the control plane for our curated data lifecycle: dependency-aware orchestration, backfills, restatements, retries, partial failure, and recovery
Decide, dataset by dataset, whether the answer is a model, a service or a job, and own that architecture through production
Design the contracts between ingestion and curation so a dataset can be reasoned about end to end
Build alerting and data quality signals that catch real problems and stay quiet otherwise, so on-call is about incidents rather than noise
Work across Go, Kotlin, Rust, Python and SQL, choosing the right tool rather than the familiar one
Break large problems into work other engineers can own, and sequence it so we ship something useful early
You are a backend engineer who has gone deep on data systems, or a data engineer who became a strong software engineer. You ship production services, not only pipelines
You have built or materially extended orchestration and scheduling systems, and can explain precisely what breaks at scale and why
You have handled schema evolution and data correctness in a system with real consumers downstream, where a breaking change has a cost
You have built or operated stateful stream processing in production (Flink,Kafka Streams, Spark Structured Streaming, RisingWave, Materialize, Feldera)
You have strong SQL and modeling skills on large datasets, and an interest in how the query engine underneath actually executes your work
You have solid computer science fundamentals and distributed systems understanding
You debug independently and drive root cause analysis to a fix that holds
You use AI tools well enough that they have changed how you work, you understand their failure modes and dislike ai-slop.
You communicate clearly in writing and get the best out of a distributed team
Deep experience with a transformation framework such as dbt or SQLMesh: specifically, having hit its limits and built beyond them
Data lake formats such as Parquet, Iceberg or Deltalog
Stateful stream processing in production (Flink, Kafka Streams, Spark Structured Streaming)
Experience at a company where the data is the product
Norwegian crypto data analytics company serving developers, analysts, investors, and enterprise data teams.
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Senior
Remote
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