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Data engineer fabric

Anonymous · Gurugram, India

FULL TIMEpermanent

Job Description

Role Purpose

Build and operate the data pipelines that feed the Entity Hub. This role lands all six in-scope sources into Fabric, implements standardization and transformation logic, and maintains the data quality checks and monitoring that the entity resolution engine depends on. Reliable, observable ingestion is the foundation the entire programme rests on.

Key Responsibilities

Ingestion development — build and maintain pipelines to land the six in-scope sources (Secretary of State, D& B, ARROW, E1, h Cue, Doc Central) into the Fabric Bronze/raw layer. Mirroring & CDC — implement Fabric Mirroring for supported structured sources and establish change-data-capture patterns; implement watermark/incremental load logic where mirroring is unavailable. Raw layer management — maintain one Delta table per source on an append-only basis, retaining evidence records and full source provenance. Standardization & transformation — implement name normalization, address parsing and attribute standardization logic in Spark notebooks; support identifier-spine construction. Data quality — implement data quality checks, validation rules, threshold alerts and exception handling; support reconciliation against source. Pipeline operations — schedule, monitor and troubleshoot pipeline runs; investigate failures and performance issues; maintain run documentation. Performance tuning — optimise Spark jobs, Delta file sizes, partitioning and pipeline efficiency to manage Fabric capacity consumption. Documentation — produce and maintain source-to-target mappings, transformation logic documentation and lineage records.

Required Skills & Experience

Skill Area

Specific Requirements

Core Engineering

Python, Py Spark, advanced SQL, Delta Lake, distributed data processing

Microsoft Fabric

Data Factory pipelines and Copy Activity, Lakehouse, One Lake, Spark notebooks, Environments, Mirroring, Shortcuts

Data Integration

Batch and incremental ingestion, CDC patterns, watermarking, reprocessing strategies, schema-on-read for varied formats

Data Quality

Validation rule implementation, completeness/accuracy checks, alerting, exception workflows, reconciliation

Modelling

Bronze/Silver/Gold medallion layering, cleansing and conformance, standardization of names, addresses, dates and codes

Ops & Governance

Pipeline monitoring, lineage and metadata capture, access controls, technical documentation

Must-Have Qualifications

4+ years hands-on data engineering with strong Py Spark and SQL Production experience building ingestion pipelines from multiple heterogeneous sources Working knowledge of Delta Lake and medallion/lakehouse architecture Experience implementing incremental loads and CDC-style processing Experience implementing data quality checks and troubleshooting pipeline failures

Nice-to-Have

Microsoft Fabric hands-on experience (Mirroring, Copy Jobs, Environments) Exposure to entity/master data standardization (name and address parsing) Familiarity with libraries such as Great Expectations for data quality Experience optimising for Fabric capacity/CU consumption

Key Deliverables Owned

Operational ingestion pipelines for all agreed sources Bronze/raw layer with one Delta table per source and CDC retained Standardization and parsing transformation logic Data quality checks, monitoring and exception handling Source-to-target mapping and run documentation

Dual Role / Complementary Skills

Complementary with the Entity Resolution engineering workstream — both are Py Spark-on-Fabric disciplines, so this role can cross-train on Splink tuning and candidate-pair generation to provide cover. Also supports the Sr. Data Engineer (Lead) on identifier-spine construction, and can assist the Vector DB Engineer with document/attribute preparation in Phase 2.

Details

CompanyAnonymous
LocationGurugram, India
TypeFULL TIME
Nichetech
Experiencepermanent

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