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Staffbase

Engineering Manager, Data & Analytics

  • Hybrid
  • 6+ years

Salary

Not stated

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Description

About Staffbase

We inspire people to achieve great things together. Our mission is to help organizations unlock the power of inspirational communication with the first AI-native Employee Experience Platform . Our industry-leading and award-winning agentic AI communications channels - intranet, employee app and email solutions - create engaging experiences that connect and empower employees.

Headquartered in Chemnitz, Germany and New York City, with offices in Berlin, London, Sydney, Tokyo, Prague, and Minneapolis–St. Paul, our diverse team of 550+ employees supports 1,500+ customers—reaching over 14 million employees—in transforming their employee experience.

We are proud to be a Unicorn company—privately valued at over $1 billion—demonstrating strong growth, innovation, and lasting impact in our industry. Together, we’re shaping the future of workplace communication.

Engineering Manager – Data & Analytics

As Engineering Manager for our Data & Analytics team, you will lead a team of 4-5 engineers while staying meaningfully hands-on as a technical player-coach. This is not a traditional management role. You are someone with a strong and senior data engineering background who genuinely wants to step into management. You will own the team's delivery, drive stakeholder alignment, and bring the technical depth needed to develop your team and keep us on the right track.

You will work closely with the Director of Engineering and product stakeholders, on sequencing, prioritization, and roadmap negotiation — with enough technical grounding to make sound decisions and mentor engineers day to day.

Our environment

Data operates on two fronts: maintaining and evolving a self-service data platform, and delivering as a product team

While the overall architecture direction is established for the near term, you'll shape the details and influence the technical direction as the roadmap extends into 2027 and beyond.

You are the voice on data. Driving delivery and managing the interfaces with the broader staff engineering community available to support on high-level architectural input.

Data governance for AI agents is an emerging and fast-growing priority — a technically exciting area we're starting to build into

What you'll be doing

Lead and develop a team of 4-5 engineers: coaching, unblocking delivery, and building a product-minded data engineering culture

Own the team's roadmap sequencing. Negotiating priorities with product stakeholders, pushing back where needed, and finding constructive compromises

Mediate between platform and product demands: the team operates across data platform and product delivery simultaneously, and you will balance both

Bring hands-on experience in Data streaming to guide the team through an active transition

Raise the bar on data modeling across the team

Drive the cultural and technical shift toward distributed data ownership, helping product teams progressively own their own data

With your extensive Data Engineering experience you will collaborate with the broader staff engineering community on cross-cutting architectural decisions where needed

Build the foundations for AI data governance — as agentic analytics becomes customer-facing, you will need to think through guardrails, access control, and safety for AI agents interacting with data

What you need to be successful

Proven experience at Staff Engineer level (or equivalent) in a data engineering context. You have been deep in the technical work and now want to lead people

A genuine player-coach mindset

Strong stakeholder management skills. You thrive in negotiation, can push back confidently, and know how to reach workable compromises with product teams

Solid data modeling skills and the credibility to make it a team-wide standard

Experience managing or developing engineers. Coaching technical fundamentals and growing product thinking

Strong communication skills and the ability to drive a cultural shift toward distributed, self-service data ownership

Comfort operating across both platform and product delivery contexts

Requirements

  • Experience with data governance for AI agents — guardrails, access control, and safety considerations for agentic analytics
  • Familiarity with data lakes, semantic layers, and orchestration tooling at scale
  • Experience in a product-led B2B SaaS environment
  • Hands-on streaming experience (e.g. Kafka or Flink)
  • What you'll get
  • Competitive Compensation - we offer attractive salary packages including LTIP (unit-based Long Term Incentive Plan)
  • Flexibility - we offer flexible working time models and the option of hybrid work, and support this with a yearly flex work allowance of €1560
  • Recharge - with 31 vacation days annually (incl. one floating holiday), plus pro rata fully paid Fridays off during August
  • Support - we offer offering a company pension scheme
  • Volunteers Day - you’ll get one day off per year for supporting a social project

Where you’d work

Part of the week in the office

About the company

Staffbase

  • Industry: SaaS

Offices in Berlin, Germany, Germany

Also hiring in Toronto, Canada and Canada

1 of their 12 open roles is remote

Your chances

Worth a look before you spend an evening tailoring a CV for it.

  • 19 checks run
  • 1 red flag

Still hiring?

13 checks

1 red flag

How crowded?

6 checks

No red flags

Fits Me

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  • Must-haves
Details12 facts · Role, Location, Compensation, Employment, Company
Tech stack
  • Kafka
  • Flink
Seniority
Manager
Type
Contract
Industry
SaaS
Specialty
Data Engineering
Region
Europe
Show 6 more factsShow less

Role

Category
Data & Analytics
Specialty
Data Engineering
Seniority
Manager
Experience
6+ years
Tech stack
  • Kafka
  • Flink

Location

Work model
Hybrid
Region
Europe
Offices
  • Berlin, Germany
  • Germany

Compensation

Salary
Salary by agreement
Pay period
Annual

Employment

Type
Contract

Company

Industry
SaaS

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