Databricks Data Engineer / Business Analyst - Data Contracts & OCDS

Scicom Infrastructure Services, Inc.

$90K — $130K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in a relevant field such as computer science or data analytics.
  • 5+ years of combined experience in data engineering, analysis, or integration.
  • Hands-on experience with the Open Contracting Data Standard (OCDS).
  • Proven ability to construct, document, and negotiate data contracts.
  • Proficient in mapping procurement data to OCDS schemas.
  • At least 3 years of experience with Databricks.
  • Strong skills in Apache Spark, PySpark, Python, SQL, and Delta Lake.

Responsibilities

  • Lead sessions to gather requirements from various stakeholders.
  • Define and document data contracts between producers and consumers.
  • Translate business needs into technical specifications and user stories.
  • Analyze source data and map it to target structures relevant to OCDS.
  • Facilitate consensus among stakeholders regarding data agreements.
  • Evaluate changes for their potential impact on data products and reports.
  • Support Agile practices such as backlog refinement and sprint planning.

Benefits

  • Hybrid work model offering flexibility between remote and in-office work.
  • Opportunity to work on a large-scale Databricks implementation project.
  • Collaboration with diverse teams across multiple functions.
  • Engagement with cutting-edge data governance and engineering practices.
  • Support for professional development and certifications.
Full Job Description
Position Summary

Scicom Infrastructure Services is seeking a Data Engineer / Business Analyst to support a large-scale Databricks implementation. This hybrid role will bridge business, contracting, data-governance, and engineering teams to define business requirements, construct data contracts, map source data, and develop reliable Databricks data pipelines.

The successful candidate must have hands-on experience with the Open Contracting Data Standard (OCDS) and understand how contracting and procurement information is structured across planning, tender, award, contract, and implementation stages. OCDS provides a standardized model for publishing and analyzing data throughout the public-contracting process and uses defined schemas, codelists, releases, records, and packages.

This individual will work closely with business stakeholders, procurement subject-matter experts, data architects, Databricks engineers, governance teams, and program leadership to translate complex business and contracting requirements into enforceable technical specifications and production-ready data products.

Key Responsibilities

Data Contracts and Business Analysis
  • Lead requirements-gathering sessions with procurement, contracting, program, analytics, governance, and technical stakeholders.
  • Define, construct, document, and maintain data contracts between data producers and consumers.
  • Establish data-contract requirements covering:
    • Dataset purpose and ownership
    • Source and target systems
    • Schemas, fields, and data types
    • Required and optional attributes
    • Business definitions and transformation rules
    • Data-quality expectations
    • Validation and reconciliation rules
    • Refresh frequency and delivery schedules
    • Versioning and schema-evolution requirements
    • Security classifications and access controls
    • Service-level expectations
    • Issue ownership and change-management procedures
  • Translate business requirements into user stories, acceptance criteria, process flows, data mappings, interface specifications, and technical requirements.
  • Conduct source-system analysis, data profiling, gap assessments, and source-to-target mapping.
  • Identify differences between existing procurement data and required OCDS structures.
  • Facilitate agreement among data owners, producers, consumers, architects, and governance teams.
  • Maintain traceability from business requirements through data models, engineering implementation, testing, and acceptance.
  • Evaluate requested changes for downstream effects on data products, reports, integrations, and analytical use cases.
  • Support backlog refinement, sprint planning, demonstrations, testing, and stakeholder acceptance.

OCDS Responsibilities
  • Apply the Open Contracting Data Standard to procurement and public-contracting datasets.
  • Map source-system data to appropriate OCDS fields and structures.
  • Work with data across the contracting lifecycle, including:
    • Planning
    • Tender
    • Award
    • Contract
    • Implementation
  • Develop and maintain mappings for OCDS releases, records, release packages, record packages, identifiers, organizations, parties, items, milestones, documents, transactions, amendments, and related contracting elements.
  • Interpret and apply OCDS schemas, codelists, validation rules, and implementation guidance.
  • Determine whether standard OCDS fields meet project requirements or whether documented extensions are necessary.
  • Support the construction of complete contracting records from multiple transactional releases.
  • Establish rules for handling amendments, updates, cancellations, corrections, and historical changes.
  • Validate transformed data against applicable OCDS JSON schemas.
  • Identify missing, invalid, inconsistent, or nonconforming procurement data and work with stakeholders to resolve deficiencies.
  • Document assumptions, business rules, mappings, extensions, and exceptions.
  • Support the publication, exchange, analysis, or internal use of standardized contracting data.

Databricks Data Engineering
  • Design, develop, test, and maintain data pipelines using Databricks, Apache Spark, PySpark, Python, and SQL.
  • Build ingestion and transformation pipelines for structured and semi-structured procurement data.
  • Process JSON, CSV, XML, Parquet, relational database, API, and file-based data sources.
  • Implement Bronze, Silver, and Gold data layers using medallion architecture.
  • Build normalized, dimensional, analytical, and OCDS-aligned data models.
  • Use Delta Lake capabilities for schema enforcement, schema evolution, versioning, auditability, and reliable processing.
  • Develop reusable frameworks for mapping source procurement data into OCDS-compatible outputs.
  • Implement batch and incremental ingestion patterns.
  • Use Databricks Workflows, notebooks, jobs, Auto Loader, Delta Live Tables or Lakeflow capabilities, as appropriate.
  • Develop REST API integrations for source ingestion and downstream data delivery.
  • Implement automated data-quality, reconciliation, completeness, and conformity checks.
  • Support Unity Catalog implementation for metadata, ownership, lineage, access control, and data discovery.
  • Optimize Spark jobs, SQL queries, clusters, partitioning, file sizes, and data layouts.
  • Participate in code reviews, automated testing, CI/CD, deployment, monitoring, and production support.
  • Investigate pipeline failures, data discrepancies, and performance issues.

Data Quality and Governance
  • Define measurable quality rules for accuracy, completeness, validity, timeliness, consistency, and uniqueness.
  • Develop validation controls for required OCDS fields, identifiers, dates, amounts, currencies, organizations, classifications, and contracting relationships.
  • Create dashboards or reports that show data-contract compliance and data-quality results.
  • Establish processes for detecting and managing schema drift.
  • Document data lineage from original procurement systems through Databricks transformations and downstream products.
  • Work with governance teams to assign data owners, stewards, classifications, retention requirements, and access policies.
  • Ensure sensitive procurement and supplier information is handled according to security and privacy requirements.
  • Support auditability through documented rules, version-controlled mappings, validation results, and change histories.

Required Qualifications
  • Bachelor's degree in computer science, information systems, data analytics, business analysis, engineering, public administration, supply-chain management, or a related field.
  • At least five years of combined data-engineering, data-analysis, business-analysis, or data-integration experience.
  • Hands-on experience implementing or working with the Open Contracting Data Standard.
  • Demonstrated experience constructing, documenting, negotiating, or maintaining data contracts.
  • Experience mapping procurement or contracting data to OCDS schemas.
  • Strong knowledge of OCDS releases, records, schemas, codelists, identifiers, contracting stages, and validation practices.
  • At least three years of hands-on experience with Databricks.
  • Strong experience with:
    • Apache Spark
    • PySpark
    • Python
    • SQL
    • Delta Lake
    • ETL and ELT pipelines
    • Data modeling
    • JSON and JSON Schema
    • REST APIs
    • Data-quality validation
    • Source-to-target mapping
  • Experience gathering requirements and translating them into implementable engineering specifications.
  • Ability to communicate effectively with technical and nontechnical stakeholders.
  • Experience writing user stories, acceptance criteria, business rules, data dictionaries, interface specifications, and process documentation.
  • Strong analytical, troubleshooting, facilitation, and documentation skills.
  • Experience working within Agile delivery teams.

Preferred Qualifications
  • Experience with government procurement, public-sector contracting, grants, acquisition, supplier, or financial data.
  • Experience implementing OCDS extensions or tailoring OCDS for specific organizational requirements.
  • Familiarity with procurement classifications, organizational identifiers, tender processes, awards, amendments, milestones, transactions, and contract implementation.
  • Databricks Certified Data Engineer Associate or Professional certification.
  • Experience with Unity Catalog, Delta Live Tables, Lakeflow, Databricks Workflows, or Structured Streaming.
  • Experience with Microsoft Azure, AWS, or Google Cloud.
  • Experience with Azure Data Factory, ADLS Gen2, AWS Glue, Amazon S3, Snowflake, dbt, Kafka, Airflow, or Power BI.
  • Experience using JSON Schema validation tools and automated data-quality frameworks.
  • Knowledge of metadata management, master-data management, data lineage, and reference-data governance.
  • Experience with CI/CD, Git, Azure DevOps, GitHub Actions, Jenkins, or Terraform.
  • Experience supporting large federal, state, local-government, or regulated-enterprise data programs.
  • Familiarity with federal acquisition, procurement, reporting, transparency, or open-data requirements.

Core Competencies
  • Ability to operate equally well in technical engineering and business-analysis discussions.
  • Strong understanding of how data contracts create accountability between data producers and consumers.
  • Ability to convert complex procurement processes into clear data structures and transformation rules.
  • Attention to detail when interpreting schemas, codelists, business definitions, and validation requirements.
  • Strong stakeholder-facilitation and conflict-resolution skills.
  • Ability to identify gaps and ambiguities before they become engineering defects.
  • Commitment to documentation, traceability, governance, and data quality.
  • Ability to work effectively within a large, multidisciplinary Databricks team.

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