Lead Data Scientist

Posted 23 Hours Ago
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Hiring Remotely in Barcelona, Cataluña
Remote
Hybrid
Expert/Leader
Artificial Intelligence • Big Data • Cloud • Information Technology • Software • Big Data Analytics • Automation
Dynatrace delivers answers and intelligent automation from data.
The Role
The Lead Data Scientist at Dynatrace will leverage advanced expertise in machine learning to drive data-driven decision-making across products. Responsibilities include designing causal analysis models, developing machine learning solutions, analyzing large datasets, and mentoring junior data scientists while collaborating with cross-functional teams.
Summary Generated by Built In

Company Description
Dynatrace provides software intelligence to simplify cloud complexity and accelerate digital transformation. With automatic and intelligent observability at scale, our all-in-one platform delivers precise answers about the performance and security of applications, the underlying infrastructure, and the experience of all users to enable organizations to innovate faster, collaborate more efficiently, and deliver more value with dramatically less effort. That's why many of the world's largest organizations trust Dynatrace® to modernize and automate cloud operations, release better software faster, and deliver unrivaled digital experiences.
Job Description
Our Business Insights team is seeking a Lead Data Scientist to drive impactful data-driven decision-making across our products and operations. In this role, you'll leverage your advanced expertise to design and develop machine learning solutions, uncover the causal relationships in complex systems, and help our customers better understand how their clients interact with their applications. This position requires someone comfortable with independently managing challenging projects and guiding others through technical decision-making.
Key Responsibilities and Impact

  • Explore and analyse millions of rows of tabular data to uncover meaningful insights and build advanced machine-learning models.
  • Design and implement causal analysis models to assess the impact of system performance on user experience, providing clear, actionable insights into customer behaviour.
  • Develop and deploy machine learning models and workflows, transforming terabytes of traffic data into actionable insights that drive key business decisions.
  • Lead the development and deployment of models, ensuring robustness, scalability, and reliability in production environments.
  • Build automated solutions for business needs, such as bot detection using advanced machine learning and statistical methods.
  • Collaborate closely with product owners, engineers, and other stakeholders to translate analytical findings into impactful features and product improvements.
  • Take ownership of technical direction, contribute to architectural decisions, identify technical debt, and advocate for opportunities for improvement.
  • Mentor and support junior data scientists, enhancing team productivity, improving code quality, and fostering a culture of collaboration and learning.
  • Continuously monitor and enhance model performance in partnership with the engineering team, improving model impact on user experience and system effectiveness.


Qualifications
Minimum requirements:

  • A degree in Engineering, Computer Science, Mathematics, or another quantitative field.
  • 10+ years of demonstrable/ tenured experience in data/ data science, including at least 3 years in a lead or senior IC role.
  • Expertise in causal analysis methods (e.g., propensity score matching, A/B testing, uplift modeling) with a demonstrated ability to analyse tabular data.
  • Strong experience in Python (including Pandas, NumPy, and Scikit-Learn) for data processing and machine learning model construction.
  • Proficiency in SQL, with the ability to write complex queries and optimise data retrieval from relational databases.
  • Strong communication skills, with the ability to articulate complex technical concepts to non-technical stakeholders.


Desirable requirements:

  • Experience with large language models (LLMs) and autonomous agents, with an understanding of their practical applications and limitations.
  • Familiarity with big data technologies such as Spark or Snowpark for processing and analysing large datasets efficiently.
  • Hands-on experience working with Snowflake, particularly using Snowpark for scalable data engineering and machine learning workflows.
  • Experience with AWS services (e.g., S3, Lambda, EC2) for managing machine learning infrastructure and deploying models in a cloud-native environment.
  • Hands-on experience with data visualisation tools like Plotly, Seaborn, or other Python-based libraries to convey data insights effectively.
  • Familiarity with data pipeline orchestration tools (e.g., Airflow, Luigi) to manage ETL/ELT workflows.
  • Ability to operate in a fast-paced, dynamic environment, effectively prioritising multiple projects with competing deadlines.


Additional Information
Expectation : All Insights team members are expected to travel at least 1 to 2 times per year for annual team meetings & events.

Top Skills

Python

What the Team is Saying

Michael Polter
Jamie Mallett
Trevor Ealy
Hannah Fleming
Kristen Armata
Steve Pace
John Rocker
The Company
HQ: Waltham , MA
4,700 Employees
Hybrid Workplace
Year Founded: 2005

What We Do

Dynatrace exists to make the world’s software work perfectly. Our unified platform combines broad and deep observability and continuous runtime application security with the most advanced AIOps to provide answers and intelligent automation from data at an enormous scale. This enables innovators to modernize and automate cloud operations, deliver software faster and more securely, and ensure flawless digital experiences. That’s why the world’s largest organizations trust the Dynatrace® platform to accelerate digital transformation.

Why Work With Us

Interested in Marketing or Sales? Majority of this office is dedicated to these primary functions. Our open floor plan is built for collaboration amongst teams and you can feel the excitement as we take over the digital world. Mingle with the executive team over a beer, say “hey” to the CEO on your way to the kitchen, or join our Office Olympics!

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Dynatrace Offices

Hybrid Workspace

Employees engage in a combination of remote and on-site work.

Majority of roles are hybrid with flexibility. Please speak with our recruiting team for specific details on hybrid work.

Typical time on-site: 2 days a week
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