Staff Engineer, Data Products
Forter
| Company | Forter |
| Category | Engineering |
| Location | Israel - Tel Aviv |
| Remote | On-site (inferred) |
| Employment | Not stated |
| Level | Lead |
| Salary | Not stated by the employer |
| Posted | 24 Jun 2026 |
| Last verified | 30 Jul 2026 |
| Source | Employer career page (greenhouse) |
Description
About the role:
Forter is looking for a Staff engineer to join our Data Products team.
The team owns the data platform layer underneath Forter's core operations.
It builds and operates the real-time data processing systems, quality pipelines, schema infrastructure, and knowledge base tooling that make agent-driven work trustworthy at scale.
At peak, the streaming systems the team works on handle ~350,000 events per second while sustaining thousands of transactions per second through Flink-based pipelines.
We're looking for a Staff Engineer to join the team as a technical anchor: a team player with the range to drive architecture and the willingness to be hands-on in execution.
Why should you join us?
This is a platform role at an inflection point. Every AI workflow at Forter runs on the data layer this team owns. The better the foundation, the faster the rest of the company can build.
What you'll be doing:
Design, build, and operate Flink-based streaming pipelines at production scale, the real-time processing systems at the core of Forter's internal workflows
Own data quality and observability infrastructure: schema contracts, freshness monitoring, ownership registries, and the alerting systems that catch problems before they affect downstream processes
Build and evolve the knowledge base tooling that makes institutional context queryable for agents and engineers
Drive data integrity work: design systems that recover reliably from failure and make the underlying platform trustworthy by default
Collaborate with the Agentic Data Foundation initiative as Forter builds a company-wide data layer; Data Products is where the proof of concept gets built and validated
Set technical direction across the team's systems and hold architecture standards with the EM and other Staff engineers.
What you'll need:
8+ years of production backend or data infrastructure experience, with at least 2 years at Staff Engineer or equivalent level
Excellent teamwork and communication skills, with a demonstrated ability to explain complex systems and facilitate collaborative solutions.
Deep experience with stream processing systems (Flink, Kafka, or equivalents) at production scale, including failure modes, recovery, and operational burden
Strong distributed systems instincts: you think about correctness and reliability before you think about features
Experience with data quality or observability infrastructure. You've built or owned the systems that keep a data platform honest
Internal product mindset: you treat the teams you serve as customers and make deliberate choices about what to build vs. what not to build
It'd be really cool if you also:
Have worked with data contracts, schema registries, or data governance tooling
Have experience with JVM languages (Scala, Java, Kotlin) and big data DBs (Aerospike/elasticsearch/etc)
Have contributed to agentic or LLM-adjacent infrastructure. You understand what "data quality for agents" actually means in practice
Have operated at a team technical anchor level in a small, high-scope team where breadth of ownership is the normv
About Us:
Commerce is evolving faster than the systems built to support it. Agentic AI is redrawing how people buy. Customer expectations have a new ceiling. And bad actors are evolving alongside every advancement.
Forter was built to meet this moment — and stay ahead of it.
We are a human-first, AI-built company. Our technology analyzes patterns across a network of over 2 billion shoppers, delivering identity intelligence across the entire commerce journey — from sign-up to checkout to returns — that protects revenue and unlocks great customer experiences simultaneously. With Forter, businesses know who to trust, whether it’s humans or the agents shopping for them. The result: zero fr
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