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Data Engineer @ Thermo Fisher

Bengaluru, Karnataka, INOnsiteFull-time
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About this role

Work Schedule Other Environmental Conditions Office Job Description

Summarized Purpose: We are offering an opportunity for a Mid-Level Data Engineer to design, build, test, tune, and support production data pipelines using PySpark, Python, advanced SQL, AWS data services, secure data handling practices, and AI-assisted data engineering capabilities.

Education/Experience:

• Bachelor's degree or equivalent in Computer Science, Information Technology, Data Engineering, or related field • 3-5 years of experience in data engineering, ETL development, SQL, AWS data platforms, or production data pipeline support

Major Job Responsibilities:

• Develop, test, tune, and maintain ETL and data pipelines using PySpark, Python, SQL, and AWS services • Support ingestion and transformation of flat files, relational databases, APIs, data warehouses, and enterprise data sources • Collaborate with business analysts, data architects, QA, DevOps, and senior engineers to implement source-to-target mappings and data solutions • Implement CDC, incremental load design, idempotent pipeline processing, and data reconciliation patterns for reliable data movement • Maintain technical documentation, mapping specifications, data catalog updates, runbooks, automated tests, and release support materials

Knowledge, Skills, and Abilities:

• Hands-on experience with PySpark, Python, advanced SQL, ETL best practices, data modeling, and large-scale data processing • Deep knowledge of Redshift performance tuning including distribution keys, sort keys, compression encoding, Spectrum, materialized views, WLM, vacuum, and analyze • Strong knowledge of Athena optimization including partition pruning, file formats, compression, schema evolution, and cost-efficient query design • Strong understanding of DynamoDB data modeling, access-pattern-based design, capacity planning, GSIs/LSIs, TTL, Streams, and performance tuning • Exposure to secure PHI/PII handling including encryption, access controls, auditability, retention, masking, and de-identification where applicable • Strong analytical, troubleshooting, documentation, communication, and cross-functional collaboration skills

Must Have Skills:

• PySpark, Python, advanced SQL, ETL development, and data pipeline implementation experience • AWS data services experience including S3, Glue, Lambda, Step Functions, ECS, DynamoDB, Redshift, PostgreSQL, SQL Server, and Athena integration • Flat-file ingestion, source-to-target mapping, transformation logic, CDC, incremental loads, idempotent processing, reconciliation, and data quality checks • CI/CD, GitHub workflows, automated testing, and release management for data pipelines and database changes • Problem-solving, production support, debugging, documentation, and Agile delivery skills

Good to Have Skills:

• Exposure to AI-assisted mapping automation and use of LLMs for data cleaning, data quality checks, transformation logic, or documentation • Familiarity with RAG patterns, embeddings, vector databases, semantic search, or AI-enabled data discovery solutions • Understanding of healthcare data standards such as HL7, FHIR, CCD, claims data, EMR extracts, clinical trial data, and patient de-identification • Familiarity with infrastructure as code such as Terraform or CloudFormation, plus Databricks, Snowflake, streaming, observability, or DevOps practices

Working Hours:

• India: 05:30 PM to 02:30 AM IST Philippines: 08:00 PM to 05:00 AM PHT

Skills

pysparkpythonsqletl developmentaws data servicesdata pipeline implementationdata modelingredshift performance tuningathena optimizationdynamodb data modelingpostgresqlsql serverathena integrations3glue

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