HCVT

Senior Data & Analytics Specialist

HCVT$100K — $120K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years of experience in data engineering, analytics, or related fields.
  • Degree in Computer Science, Data Science, Analytics, Engineering, or similar.
  • Proficient in designing relational databases and scalable data pipelines.
  • Advanced SQL and Python skills for data manipulation and automation.
  • Experience with ETL/ELT and enterprise data models.
  • Familiarity with statistical analysis and machine learning techniques.
  • Understanding of data governance and quality management.

Responsibilities

  • Design and maintain the firm's enterprise data platform and data pipelines.
  • Develop analytics solutions for business performance and operational insights.
  • Apply machine learning techniques to solve complex problems and improve efficiency.
  • Create high-quality data assets for AI applications and intelligent solutions.
  • Lead technical initiatives on data architecture and analytics strategy.

Benefits

  • Hybrid work model supporting both remote and in-office work arrangements.
  • Health, wellness, and work-life balance perks (details available in the benefits section).
  • Opportunities for professional development and continuous learning.
  • Collaborative work environment that encourages innovation and teamwork.
Full Job Description
Hybrid Work

HCVT currently offers a hybrid work model that allows eligible employees to work both remotely and in the office, based on business needs and team coordination. When working remotely, employees are expected to meet the same performance standards, adhere to the same policies, and maintain the same level of communication, collaboration, and responsiveness as working in the office. Please note that this arrangement is not guaranteed and subject to change at any time. We will strive to provide reasonable notice of any changes to your work location or schedule whenever possible.

About the Role

The Senior Data & Analytics Specialist is responsible for designing, building, and advancing the firm's enterprise data and analytics capabilities. This role combines expertise in data engineering, business intelligence, advanced analytics, and machine learning to deliver scalable data platforms, actionable business insights, and AI-ready data assets. Working closely with business and technology leaders, the position transforms enterprise data into trusted information that improves decision-making, operational efficiency, and client outcomes.

As the Senior Data & Analytics Specialist, you will be responsible for, but not limited to, the following:

  • Enterprise Data Platform & Engineering: Design, develop, and maintain the firm's enterprise data platform, including data warehouses, data lakes, semantic models, and data pipelines. Build scalable ETL/ELT processes that integrate information across Finance, Tax, Audit, Advisory, Operations, and other business systems while ensuring data quality, reliability, governance, and performance. Define data models, standards, and architecture that support reporting, analytics, machine learning, and AI initiatives.
  • Data Analytics & Business Intelligence: Develop modern analytics solutions that provide meaningful insights into business performance and operations. Design and deliver executive dashboards, KPIs, operational reporting, and self-service analytics using Power BI and Microsoft Fabric. Partner with business stakeholders to translate analytical requirements into scalable reporting solutions while establishing best practices for data visualization, metric definitions, and analytics governance.
  • Advanced Analytics & Data Science: Apply statistical analysis, predictive modeling, forecasting, and machine learning techniques to solve complex business problems. Build analytical models that improve operational efficiency, identify trends, predict outcomes, and support strategic decision-making. Evaluate model performance, improve accuracy, and operationalize analytical solutions for enterprise use.
  • AI-Ready Data & Intelligent Solutions: Develop governed, high-quality data assets that enable AI applications, intelligent automation, and generative AI solutions. Support modern AI capabilities through semantic models, vector-ready datasets, retrieval pipelines, and data preparation processes that improve the accuracy, reliability, and scalability of AI-enabled business solutions. Partner with software engineering teams to integrate analytics and machine learning capabilities into enterprise applications and AI agents.
  • Technical Leadership & Data Strategy: Provide technical leadership in enterprise data architecture, analytics technologies, and modern data engineering practices. Evaluate emerging tools and technologies, recommend improvements to the firm's data ecosystem, and contribute to the long-term analytics and AI strategy. Promote engineering best practices, data governance standards, automation, and continuous improvement across the analytics platform.


We expect that our Staff Azure Cloud Engineer will have the following qualifications:

  • 5+ years of progressive experience in data engineering, data analytics, data science, business intelligence, or related technical disciplines.
  • Degree in Computer Science, Data Science, Analytics, Engineering, or a related technical discipline.
  • Strong experience designing relational databases, dimensional models, data warehouses, and scalable data pipelines.
  • Advanced proficiency with SQL and Python, including data transformation, automation, and analytical development.
  • Experience designing and implementing ETL/ELT processes, data integration solutions, and enterprise data models.
  • Working knowledge of statistical analysis, predictive modeling, machine learning, and model evaluation techniques.
  • Knowledge of DevOps, CI/CD, Git, and Infrastructure-as-Code practices for analytics platforms.
  • Experience with data governance, data quality, metadata management, and enterprise analytics best practices.
  • Strong analytical thinking, technical problem-solving, and the ability to translate business requirements into scalable data solutions.
  • Excellent communication skills with the ability to explain complex technical concepts to business stakeholders.

Preferred Qualifications
  • Experience within professional services, consulting, financial services, or public accounting.
  • Hands-on expertise with Microsoft Fabric, Azure Data Platform, Power BI, or comparable cloud-based analytics platforms.
  • Experience with AI-enabled data architectures, RAG pipelines, semantic search, vector databases, or LLM-powered applications.
  • Experience building production machine learning or advanced analytics solutions.
  • Master's Degree in Computer Science, Data Science, Analytics, Engineering, or a related technical discipline.


You Matter - HCVT provides a variety of benefits and perks that help sustain a healthy and thriving work environment.

  • Visit the Benefits section to learn more.


Connect with us:

LinkedIn, Instagram, Facebook, HCVT Website

#LI-GC1

#LI-Hybrid

About HCVT

HCVT is a CPA firm that provides tax, audit, accounting, and business advisory services to privately held businesses and high net worth individuals. The firm was founded in 1991 and has grown to become one of the largest CPA firms in Southern California. HCVT has a team of over 700 professionals and serves clients in a variety of industries, including real estate, healthcare, technology, and entertainment. The firm is committed to providing exceptional client service and has a reputation for delivering innovative solutions to complex business challenges.
Learn more about HCVT
Size
700 employees
Industry
Founded
1991
5 Year Trend
+20%
Revenue
$150 million

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