Senior Data Platform Engineer

Posted Yesterday
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Berlin, DEU
In-Office
Senior level
Artificial Intelligence • Industrial
The Role
Own and scale Andercore’s Databricks lakehouse, including ingestion, storage, orchestration, governance, domain modeling, data quality, monitoring, and near-real-time processing. Build trusted datasets and data foundations for pricing, forecasting, and AI agents while partnering with business stakeholders. Establish engineering standards as the first dedicated data platform hire, with potential to lead a growing data engineering team.
Summary Generated by Built In
About Andercore

Andercore is the AI-native supplier of industrial materials for energy, infrastructure, and construction in wholesale and beyond.

We trade with global suppliers and distribute to European customers on our own account. Our AI runs the full trade and distribution end-to-end: sourcing, quality, pricing, sales, logistics, and embedded financing. For the customer, it feels like buying from their preferred local supplier; for our partners, it is the most convenient and safe way to do business across borders. Behind it, our software and agentic AI do the heavy lifting that used to take an asset-intensive supply chain with four or five intermediaries and weeks of manual coordination.

Where we are today:

  • Strong triple-digit-million euro turnover

  • Seven European markets live

  • 80+ people across Berlin (HQ), offices in London, Mumbai, and Shanghai

$40M Series B just closed, $75M raised to date from Atomico, Project A, and Inven Capital, institutional financing from international banks.

We are building the world's first and last industrial-grade AI operating system for materials, redefining how global trade works in one of the largest and most essential industries on earth.

Why this role, why now

We already run on Databricks, and we have a Head of Data who owns metrics, KPIs and business analytics. What's missing is the engineer who makes the platform solid: clean ingestion, a trustworthy model of our commercial and logistics domain, and a foundation ready for the next step, which is dynamic pricing and demand sensing.

You'll be the first dedicated data platform hire. You'll set the standards the team grows into, with a path to leading a small data engineering team as we scale.

What you will do

  • Own our Databricks lakehouse end to end: ingestion from Salesforce and our operational systems, storage, pipeline architecture, orchestration and governance

  • Model the commercial and logistics domain (quotes, orders, margins, suppliers, shipments) into clean, trusted datasets that finance, sales, procurement and logistics can all use without keeping their own version of the truth

  • Work closely with our Head of Data to turn business questions into reusable datasets and metrics, not one-off exports

  • Build the data foundation for pricing, forecasting and our AI agents: features, signals, historical snapshots and feedback loops that tell us whether a decision was right

  • Make data quality observable: tests, monitoring and alerting, so broken pipelines and silent schema drift get caught before a buyer notices

  • Add near-real-time processing where the business needs to act now, and keep things simple where batch is enough

Who you are

  • 5+ years in data engineering, with real ownership of a platform rather than a single pipeline

  • Deep SQL and Python, plus hands-on experience with Spark and a lakehouse (Databricks strongly preferred: Delta Lake, Workflows, Unity Catalog)

  • You've used a CRM or ERP as a primary source system and know what it means to model messy operational data that people edit by hand

  • Comfortable with infrastructure as code and with software engineering practices for data (version control, CI, testing)

  • You talk to non-technical stakeholders easily and push back when a request should be solved differently

  • You work well in a Series B setting where priorities shift and nobody hands you a finished spec

  • You use AI coding tools as a natural part of your work and know where they help and where they don't

Nice to have

  • Streaming experience (Kafka, Kinesis or equivalent)

  • Machine learning and statistical analysis, especially applied to forecasting or pricing

  • Salesforce

  • Experience in commerce, marketplaces or supply chain, and an interest in catalog, pricing and fulfilment problems

  • A degree in Computer Science, Engineering or a related field

What we offer

  • A growing 12-person product and engineering team where you own your area end to end

  • A company where data work is not a support function: our agents and our margin depend on it directly

  • Hybrid setup in Berlin

  • Direct access to the founders and to the commercial teams whose problems you are solving

We are an equal-opportunity employer and welcome applicants from all backgrounds, regardless of race, ethnicity, gender identity or expression, sexual orientation, religion, age, disability, or any other characteristic. We believe that diversity drives innovation, creativity, and collective strength.

Skills Required

  • 5+ years of experience in data engineering
  • Experience owning a data platform rather than a single pipeline
  • Deep SQL and Python skills
  • Hands-on experience with Apache Spark and lakehouse platforms
  • Experience with Databricks, preferably including Delta Lake, Workflows, and Unity Catalog
  • Experience using a CRM or ERP as a primary source system
  • Experience modeling messy operational data
  • Comfort with infrastructure as code
  • Experience with version control, continuous integration, and testing for data software
  • Ability to communicate with non-technical stakeholders and challenge unsuitable requests
  • Ability to work effectively in a Series B environment with shifting priorities
  • Experience using AI coding tools and understanding their appropriate use
  • Streaming experience with Kafka, Kinesis, or an equivalent technology
  • Machine learning and statistical analysis experience, particularly forecasting or pricing
  • Salesforce experience
  • Experience in commerce, marketplaces, or supply chain
  • Interest in catalog, pricing, and fulfillment problems
  • Degree in Computer Science, Engineering, or a related field
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The Company
HQ: Berlin, Berlin
76 Employees
Year Founded: 2021

What We Do

The company is the AI-driven trade platform transforming industrial supply in infrastructure, energy, and construction materials. It connects vetted suppliers across Asia, Europe, and the GCC region with local demand through a single integrated platform. Its proprietary AI stack digitizes and automates the full lifecycle of materials trade — from procurement and pricing to inventory, logistics, and embedded financing — replacing thousands of manual, relationship-driven processes with real-time orchestration. Buyers gain instant quotes, reliable availability, and predictable delivery through a unified operating system. Suppliers benefit from accurate forecasting, disciplined demand management, and seamless integration into cross-border fulfillment networks. The company partners with leading brands to run both dropship and cross-dock fulfillment motions for large-scale transactions, turning global supply chains into predictable, repeatable, software-like workflows. Backed by top-tier investors and institutional financing partners, the company has scaled to triple-digit-million GMV, operates across six international markets, and is rapidly expanding toward profitability. With a team of 80+ people across Berlin (HQ) and Asia, it is building the world’s first industrial-grade AI operating system for materials — redefining how global trade works in one of the world’s largest and most essential industries.

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