Data Analytics/Engineer (Python and MS Fabric exp)

Posted Yesterday
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Pune, Maharashtra, IND
In-Office
Senior level
Information Technology • Software
The Role
Leads data engineering, analytics, predictive modeling, and Generative AI initiatives. Designs scalable Microsoft Fabric infrastructure, ETL/ELT pipelines, governance frameworks, and data models; develops and deploys predictive models; analyzes complex datasets; automates financial reporting and reconciliation; and partners with business, finance, and analytics teams. Provides technical leadership, mentors junior engineers, establishes reporting standards, and promotes data literacy.
Summary Generated by Built In

Wolters Kluwer is a global leader in professional information services that combines deep domain knowledge with specialized technology. Our portfolio offers software tools coupled with content and services that customers need to make decisions with confidence. Every day, our customers make critical decisions to help save lives, improve the way we do business, build better judicial and regulatory systems. We help them get it right.

JOB QUALIFICATIONS

Education : Bachelor’s degree in data science/analytics or Engineering in Computer Science, or related quantitative field. Master’s degree preferred.

Experience :

  • At least 5+ years of experience in the field of Data Analytics/Engineering.
  • Proven track record of leading data engineering initiatives or mentoring junior data engineers.

Technical Skills :

  • Architecting scalable data solutions across cloud platforms.
  • Advanced performance tuning and optimization of data pipelines.
  • Experience with enterprise-level data governance frameworks.
  • Leadership in CI/CD and DevOps practices for data engineering.
  • Mentorship experience or team leadership in agile environments.
  • Experience with data pipeline tools (e.g., Apache Airflow, dbt, Azure Data Factory, Fabric, Informatica).
  • Proficient in SQL and Python/PySpark for complex data transformations and automation
  • Hands-on experience with cloud platforms (Fabric or AWS) and data warehouses (Snowflake or Synapse) for large-scale data integration and analysis
  • Familiarity with Microsoft Fabric and its integration within modern data ecosystems
  • Strong understanding of data modelling, schema design, and performance tuning
  • Knowledge of CI/CD pipelines and version control systems like Git

Soft Skills :

  • Strong analytical skills; capable of multi-tasking in fast-paced, dynamic environment
  • Strong written and verbal communication, including report writing and data storytelling
  • Stay updated with industry trends and evolving tools; Demonstrate a proactive approach to learning new techniques and technologies
  • Work effectively across cross-functional teams
  • Strong stakeholder management and ability to translate business needs into technical solutions.
  • Experience presenting technical concepts to non-technical audiences.
  • Proven ability to lead cross-functional initiatives and drive consensus.

ESSENTIAL DUTIES

Model Development & Deployment:

  • Develop predictive models to forecast key sales and marketing metrics solve to complex business problems and drive strategic insights.
  • Lead the end-to-end lifecycle of data science projects, including data preparation, feature engineering, model development, validation, and deployment.
  • Lead and architect predictive modeling frameworks.
  • Review and guide model development by junior team members.
  • Design and implement scalable analytics platforms.
  • Drive strategic data initiatives in collaboration with finance and business leaders.

Data Analysis & Insights:

  • Analyze large, complex datasets from multiple sources to identify trends, patterns, and opportunities that inform decision-making.
  • Collaborate with finance and accounting teams to automate reconciliations, variance analysis, and error detection using advanced analytics and machine learning.

Innovation, Automation & Generative AI:

  • Lead initiatives leveraging Generative AI (GenAI) technologies to automate the generation of financial reports, narratives, and data summaries, enhancing efficiency and accuracy.
  • Lead GenAI strategy for data engineering and analytics automation.
  • Evaluate and implement emerging technologies to enhance data workflows.
  • Explore and implement GenAI applications to improve natural language processing (NLP) capabilities for extracting insights from unstructured financial documents (e.g., contracts, invoices).
  • Drive the adoption of GenAI-powered chatbots or virtual assistants to support finance shared services teams with data queries, process guidance, and routine task automation.

OTHER DUTIES

Support Data Infrastructure & Governance:

  • Lead efforts to design, optimize, and scale data infrastructure in Microsoft Fabric, defining clear data requirements and overseeing robust ETL/ELT processes.
  • Drive data governance initiatives by implementing data quality frameworks, ensuring thorough documentation, and standardizing practices across teams to maintain data integrity.

Enhance Reporting & Analytics Standards:

  • Collaborate with analytics and BI teams to establish dashboard design standards, improve user experience, and ensure consistent KPI definitions across the organization.

Promote a Data-Driven Culture:

  • Advocate for a data-driven culture, promoting the value of analytics in strategic and operational decision-making.
  • Lead or support analytical training sessions or workshops for non-technical stakeholders to improve data literacy across the organization.

Cross-Functional Collaboration:

  • Partner with business, product, and operational teams to provide expert data engineering support, enabling effective data-driven solutions and innovation across departments.
Our Interview Practices

To maintain a fair and genuine hiring process, we kindly ask that all candidates participate in interviews without the assistance of AI tools or external prompts. Our interview process is designed to assess your individual skills, experiences, and communication style. We value authenticity and want to ensure we’re getting to know you—not a digital assistant. To help maintain this integrity, we ask to remove virtual backgrounds and include in-person interviews in our hiring process. Please note that use of AI-generated responses or third-party support during interviews will be grounds for disqualification from the recruitment process.

Applicants may be required to appear onsite at a Wolters Kluwer office as part of the recruitment process.

Skills Required

  • Bachelor's degree in data science, analytics, computer science, engineering, or a related quantitative field
  • At least 5 years of data analytics or data engineering experience
  • Experience leading data engineering initiatives or mentoring junior data engineers
  • Experience architecting scalable data solutions across cloud platforms
  • Advanced performance tuning and optimization of data pipelines
  • Experience with enterprise-level data governance frameworks
  • Leadership in CI/CD and DevOps practices for data engineering
  • Mentorship or team leadership experience in agile environments
  • Experience with Apache Airflow, dbt, Azure Data Factory, Microsoft Fabric, Informatica, or similar data pipeline tools
  • Proficiency in SQL and Python or PySpark for complex data transformations and automation
  • Hands-on experience with Microsoft Fabric or AWS and Snowflake or Synapse data warehouses
  • Familiarity with Microsoft Fabric integration in modern data ecosystems
  • Strong understanding of data modeling, schema design, and performance tuning
  • Knowledge of CI/CD pipelines and Git
  • Experience developing, validating, and deploying predictive models
  • Experience with Generative AI, natural language processing, or analytics automation
  • Master's degree

Wolters Kluwer Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Wolters Kluwer and has not been reviewed or approved by Wolters Kluwer.

  • Leave & Time Off Breadth Time away benefits are positioned as broad, spanning vacation and sick time plus paid holidays and other covered leave types. Paid parental and caregiver leave, bereavement leave, and a volunteer day contribute to a more comprehensive time-off offering.
  • Retirement Support Retirement support is framed as meaningful through access to a 401(k)/retirement plan paired with company matching and additional contribution features in some descriptions. This is reinforced by mentions of profit sharing and other long-term savings-oriented programs.
  • Parental & Family Support Family-oriented support stands out through adoption assistance and paid parental leave provisions. These benefits are described alongside other caregiver supports that extend beyond basic leave categories.

Wolters Kluwer Insights

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The Company
HQ: Alphen aan den Rijn
18,996 Employees

What We Do

Wolters Kluwer (www.wolterskluwer.com) is a global leader in information services and solutions for professionals in the health, tax and accounting, risk and compliance, finance and legal sectors. We help our customers make critical decisions every day by providing expert solutions that combine deep domain knowledge with specialized technology and services. Founded in 1836 and headquartered in Alphen aan den Rijn, the Netherlands, the company serves customers in over 180 countries, maintains operations in over 40 countries and employs 18,600 people worldwide. Wolters Kluwer reported 2019 annual revenues of €4.6 billion. Listed on Euronext Amsterdam, Wolters Kluwer shares (WKL) are included in the AEX and Euronext 100 indices. Wolters Kluwer has a sponsored Level 1 American Depositary Receipt program. The ADRs are traded on the over-the-counter market in the U.S. (WTKWY).

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