Associate, Data Science
London
- Pay
- Salary not listed in the saved posting
- Work setup
Hybrid stated — work setup source
HarbourVest is an equal opportunity employer. This position will be a hybrid work arrangement, which translates to 4 days minimum per week in the office. In this role, you’ll be a key contributor to HarbourVest’s data transformation journey - bridging the gap between raw data ingestion and analytics-ready assets that power AI, data science, and other applications. You’ll work across teams to design modular, analytics-focused data workflows, model business logic, and deliver actionable insights. This hybrid role combines engineering rigor with analytical depth and business fluency, making it ideal for professionals who thrive at the intersection of data, technology, and strategy.
Read the full posting- Employment
- Unconfirmed
What you’ll work on
Full postingYou’ll work across teams to design modular, analytics-focused data workflows, model business logic, and deliver actionable insights.
Partner with global Data Science and engineering teams to apply clean architecture, source control, testing, and deployment standards.
Build and maintain clear user documentation, runbooks, and knowledge resources to ensure sustainment and continuity.
From the employer’s posting
This position will be a hybrid work arrangement, which translates to 4 days minimum per week in the office. In this role, you’ll be a key contributor to HarbourVest’s data transformation journey - bridging the gap between raw data ingestion and analytics-ready assets that power AI, data science, and other applications. You’ll work across teams to design modular, analytics-focused data workflows, model business logic, and deliver actionable insights. This hybrid role combines engineering rigor with analytical depth and business fluency, making it ideal for professionals who thrive at the intersection of data, technology, and strategy. The ideal candidate is someone who:
Enable business users and citizen developers by providing technical guidance, templates, and safe pathways from prototype to production. Partner with global Data Science and engineering teams to apply clean architecture, source control, testing, and deployment standards. Build and maintain clear user documentation, runbooks, and knowledge resources to ensure sustainment and continuity.
Partner with global Data Science and engineering teams to apply clean architecture, source control, testing, and deployment standards. Build and maintain clear user documentation, runbooks, and knowledge resources to ensure sustainment and continuity. Collaborate closely with technology teams to reduce operational support burden and amplify advanced analytics and AI impact.
What you’ll bring
All qualificationsCore experience
- Solid experience in data science, software development, or AI-related engineering roles.
- Bachelor’s or Master’s degree in Computer Science, Data Science, Engineering, or a related field, or equivalent practical experience.
- Practical experience with Python and data-focused application development.
- Familiarity with analytics platforms such as Power BI, Snowflake, or similar data ecosystems.
- Experience with cloud-based deployment concepts, DevOps practices, version control systems (e.g.
Preferred experience
- 2–5 years of experience in data science, software engineering, data engineering, or a related technical role preferred.
Qualification wording
Solid experience in data science, software development, or AI-related engineering roles.
Bachelor’s or Master’s degree in Computer Science, Data Science, Engineering, or a related field, or equivalent practical experience.
Practical experience with Python and data-focused application development.
Familiarity with analytics platforms such as Power BI, Snowflake, or similar data ecosystems.
Experience with cloud-based deployment concepts, DevOps practices, version control systems (e.g. Git), and/or CI/CD pipelines is strongly preferred.
2–5 years of experience in data science, software engineering, data engineering, or a related technical role preferred.
Education & alternatives
Education Preferred: - Bachelor’s or Master’s degree in Computer Science, Data Science, Engineering, or a related field, or equivalent practical experience. Experience:
Tools in this posting
- Python
- Snowflake
- Power BI
Source — Tool mentions in context
What you will do: - Productionise Data Science and AI prototypes into reliable, supportable applications and services, including deployment of Python-based analytics solutions using containerised or cloud-based delivery patterns. - Enable business users and citizen developers by providing technical guidance, templates, and safe pathways from prototype to production.
- Provide EMEA time-zone support for data science, analytics engineering, deployment, troubleshooting, and operational handoff. - Support and modernise legacy analytics solutions, transitioning them into scalable, maintainable patterns using Python, Snowflake, and governed platforms. - Maintain and enhance existing analytics products, including Power BI dashboards and recurring analytical workflows.
- Solid experience in data science, software development, or AI-related engineering roles. - Practical experience with Python and data-focused application development. - Familiarity with analytics platforms such as Power BI, Snowflake, or similar data ecosystems.
- Practical experience with Python and data-focused application development. - Familiarity with analytics platforms such as Power BI, Snowflake, or similar data ecosystems. - Experience with cloud-based deployment concepts, DevOps practices, version control systems (e.g. Git), and/or CI/CD pipelines is strongly preferred.
- Support and modernise legacy analytics solutions, transitioning them into scalable, maintainable patterns using Python, Snowflake, and governed platforms. - Maintain and enhance existing analytics products, including Power BI dashboards and recurring analytical workflows. What you bring:
Job description
Job Description Summary
For over forty years, HarbourVest has been home to a committed team of professionals with an entrepreneurial spirit and a desire to deliver impactful solutions to our clients and investing partners. As our global firm grows, we continue to add individuals who seek a collaborative, open-door culture that values diversity and innovative thinking.
In our collegial environment that’s marked by low turnover and high energy, you’ll be inspired to grow and thrive. Here, you will be encouraged to build on your strengths and acquire new skills and experiences.
We are committed to fostering an environment of inclusion that promotes mutual respect among all employees. Understanding and valuing these differences optimizes the potential of both the individual and the firm.
HarbourVest is an equal opportunity employer.
This position will be a hybrid work arrangement, which translates to 4 days minimum per week in the office.
In this role, you’ll be a key contributor to HarbourVest’s data transformation journey - bridging the gap between raw data ingestion and analytics-ready assets that power AI, data science, and other applications. You’ll work across teams to design modular, analytics-focused data workflows, model business logic, and deliver actionable insights. This hybrid role combines engineering rigor with analytical depth and business fluency, making it ideal for professionals who thrive at the intersection of data, technology, and strategy.
The ideal candidate is someone who:
Has engineering foundations and enjoys building reliable, production-grade analytics solutions.
Is comfortable working across data science, AI engineering, and DevOps responsibilities.
Understands the principles of analytics development and applies software engineering standard methodologies (modularity, testing, version control) to data workflows.
Demonstrates a problem-solving attitude with solid attention to detail, organisation, and documentation.
Thrives in a collaborative, inclusive, and professional environment.
Takes a practical, business-focused approach to analytics and AI delivery.
Is intellectually curious, cognitively flexible and motivated by continuous learning and evolving technologies, particularly in AI-enabled analytics.
What you will do:
Productionise Data Science and AI prototypes into reliable, supportable applications and services, including deployment of Python-based analytics solutions using containerised or cloud-based delivery patterns.
Enable business users and citizen developers by providing technical guidance, templates, and safe pathways from prototype to production.
Partner with global Data Science and engineering teams to apply clean architecture, source control, testing, and deployment standards.
Build and maintain clear user documentation, runbooks, and knowledge resources to ensure sustainment and continuity.
Collaborate closely with technology teams to reduce operational support burden and amplify advanced analytics and AI impact.
Provide EMEA time-zone support for data science, analytics engineering, deployment, troubleshooting, and operational handoff.
Support and modernise legacy analytics solutions, transitioning them into scalable, maintainable patterns using Python, Snowflake, and governed platforms.
Maintain and enhance existing analytics products, including Power BI dashboards and recurring analytical workflows.
What you bring:
Solid experience in data science, software development, or AI-related engineering roles.
Practical experience with Python and data-focused application development.
Familiarity with analytics platforms such as Power BI, Snowflake, or similar data ecosystems.
Experience with cloud-based deployment concepts, DevOps practices, version control systems (e.g. Git), and/or CI/CD pipelines is strongly preferred.
Strong analytical thinking and problem-solving capabilities.
Clear communicator who works effectively with both technical and non-technical team members.
An inclusive, collaborative attitude, we succeed together.
Organised and disciplined approach to delivering high-quality, well-documented work.
Education Preferred:
Bachelor’s or Master’s degree in Computer Science, Data Science, Engineering, or a related field, or equivalent practical experience.
Experience:
2–5 years of experience in data science, software engineering, data engineering, or a related technical role preferred.
Your next step
- Have your CV and examples of relevant work ready.
- Check the listed location, eligibility and core experience before starting.
- Ask the employer about the salary range before committing time to the process.
Complete your application on harbourvest.wd5.myworkdayjobs.com. The employer’s form will show what is required.
Already applied? Track this application
Source & posting history
Source notes
Source excerptsSelected passages from the saved posting. Check the full description for conditions and exceptions.
- Pay
No pay amount identified in the saved description.
- Location & working pattern
London
HarbourVest is an equal opportunity employer. This position will be a hybrid work arrangement, which translates to 4 days minimum per week in the office. In this role, you’ll be a key contributor to HarbourVest’s data transformation journey - bridging the gap between raw data ingestion and analytics-ready assets that power AI, data science, and other applications. You’ll work across teams to design modular, analytics-focused data workflows, model business logic, and deliver actionable insights. This hybrid role combines engineering rigor with analytical depth and business fluency, making it ideal for professionals who thrive at the intersection of data, technology, and strategy. The ideal candidate is someone who:
- Work authorization
- Productionise Data Science and AI prototypes into reliable, supportable applications and services, including deployment of Python-based analytics solutions using containerised or cloud-based delivery patterns. - Enable business users and citizen developers by providing technical guidance, templates, and safe pathways from prototype to production. - Partner with global Data Science and engineering teams to apply clean architecture, source control, testing, and deployment standards.
- Status in our records
- Active
- First seen by us
- Aug 3, 2026
- Recorded sightings
- 55
- Last seen by us
- Oct 8, 2026
These dates show when we found the listing. Check the employer’s website to confirm it is still accepting applications.
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