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Darktrace is a global leader in AI for cybersecurity that keeps organizations ahead of the changing threat landscape every day. Founded in 2013, Darktrace provides the essential cybersecurity platform protecting nearly 10,000 organizations from unknown threats using its proprietary AI.
The Darktrace Active AI Security Platform™ delivers a proactive approach to cyber resilience to secure the business across the entire digital estate – from network to cloud to email. Breakthrough innovations from our R&D teams have resulted in over 200 patent applications filed. Darktrace’s platform and services are supported by over 2,400 employees around the world. To learn more, visit http://www.darktrace.com.
Job Description:
The Data Engineers at Darktrace help design and develop cloud-native data infrastructure that powers AI/ML models within the Darktrace / Attack Surface Management (ASM) product. They build scalable systems to collect, store, and process data, handling datasets with billions of rows, and supporting the full ML model lifecycle.
The position is part of the R&D team in The Hague, and you will be expected to work a minimum of 2 days a week in office.
What will I be doing:
Your work will lay the foundation for future product innovation and support the rollout of model-driven features in the ASM product by ensuring reliable data flows from source to model to production. You will help build a data backbone that is easily maintainable and extensible while upholding high standards for data quality, scalability, and cost efficiency.
You will work closely with Data Scientists, MLOps Engineers, and Software Engineers to ensure seamless integration between data infrastructure, ML workflows and the ASM backend. You’ll contribute to architectural discussions and help implement robust, maintainable solutions aligned with data engineering best practices. Additionally, you will be responsible for:
- Contributing to the design, implementation, and maintenance of data pipelines that power AI/ML models within the ASM product,
- Helping build and maintain cloud-native data platforms that integrate data from various internal and external sources,
- Designing systems with scalability in mind to support growing data volumes and evolving ML workloads,
- Optimizing data pipelines for reliability, scalability, and cost efficiency,
- Assisting in setting up and maintaining CI/CD pipelines for data and ML workloads, with guidance from MLOps and DevOps teams,
- Collaborating closely with Data Scientists, MLOps Engineers, Software Engineers, and Product Owners to understand data needs and deliver solutions
- Participating in knowledge sharing and contribute to continuous improvement by applying data engineering best practices.
What experience do I need:
To succeed in this role, you’ll need a strong foundation in data engineering and cloud technologies, along with fluency in English and proficiency in Python. You should be able to demonstrate:
- Hands-on experience with data pipelines (ETL/ELT) and workflow orchestration tools such as Apache Airflow,
- Solid knowledge of SQL/NoSQL databases, data modeling, and schema design,
- Familiarity with streaming technologies (e.g., Kafka), containerization (Docker, Kubernetes), and at least one major cloud platform - preferably Google Cloud
- Exposure to big data frameworks (Spark, Beam), infrastructure-as-code tools (Terraform), and MLOps practices is a plus.
Beyond technical expertise, the role requires strong analytical and critical thinking skills, effective project management, and clear communication of technical findings. You should be results-oriented, collaborative, and adaptable, with a proactive approach to knowledge sharing and documentation. Curiosity and a willingness to learn new technologies will help you thrive in this dynamic environment.
Benefits:
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25 days’ holiday + all public holidays,
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Additional day off for your birthday,
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Commuting allowance,
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Pension Scheme,
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Life & Disability insurance,
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Employee Assistance Program,
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Bicycle Leasing Scheme.
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About Darktrace

Darktrace
AcquiredDarktrace Holdings Ltd is a British cyber security company, established in 2013 and headquartered in Cambridge, United Kingdom with further global office locations in London, San Francisco, and Singapore.
501-1,000
Employees
The Hague Office
Headquarters
Reviews
2.8
10 reviews
Work Life Balance
2.1
Compensation
3.4
Culture
1.8
Career
2.0
Management
1.6
15%
Recommend to a Friend
Pros
Good compensation for top performers
Remote work flexibility (4 days remote)
Quality training programs
Cons
Toxic work environment and culture
Poor management and leadership skills
High turnover and constant pressure
Salary Ranges
13 data points
Junior/L3
Senior/L5
Director
Junior/L3 · Customer Success Manager
1 reports
$87,400
total / year
Base
$76,000
Stock
-
Bonus
-
$87,400
$87,400
Interview Experience
52 interviews
Difficulty
3.2
/ 5
Duration
14-28 weeks
Offer Rate
42%
Experience
Positive 65%
Neutral 24%
Negative 11%
Interview Process
1
Phone Screen
2
Technical Interview
3
Hiring Manager
4
Team Fit
Common Questions
Technical skills
Past experience
Team collaboration
Problem solving
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