Senior Data Platform Engineer

FalconSmartIT
Guildford, UK
2 months ago

Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Working hours
Regular working hours
Job source

Tech stack

Artificial Intelligence Automation of Tests Microsoft Azure Bash Shell Big Data Cloud Database Information Systems Computer Programming Continuous Integration Information Engineering Data Governance Data Infrastructure
+42 more
Extract Transform Load (ETL) Data Security Github Monitoring of Systems Python (Programming Language) Log Analysis OpenID Windows PowerShell Scrum Methodology Role-Based Access Control Cloud Services Kusto Query Language Azure Data Lake Data Streaming Technical Data Management Systems Trunk-based Development Parquet Datadog Pulumi Data Processing Scripting Microsoft Power Automate Azure Data Factory Cloud Monitoring Apache Spark Git Event Driven Architecture Microsoft Fabric Data Lakes Pyspark Infrastructure Automation Frameworks Information Technology Data Analytics Bicep Apache Kafka Machine Learning Operations CIS Benchmarks Terraform Azure Synapse Analytics Data Pipelines Key Vault Databricks

Job description

  • Lead solution design activities, collaborating with peers and mentoring junior colleagues to define and execute the team backlog.
  • Develop, test, and document scalable ETL/ELT data pipelines and workflows using Databricks and Azure Synapse to ingest and transform data from a variety of sources.
  • Administer and maintain Azure data platform components including Synapse, Databricks, ADLS Gen2, Key Vault, networking (VNets, NSGs, Managed Private Endpoints) and access control (RBAC, ACLs).
  • Manage infrastructure-as-code across Dev, Staging, and Production environments using Pulumi (and equivalents such as Terraform / Bicep).
  • Design and operate CI/CD pipelines using GitHub Actions (with OIDC federation) and/or Azure DevOps, supporting trunk-based development practices.
  • Administer Databricks workspaces cluster policies, Secret Scopes, Repos/Git integration, Workflow job health, and Unity Catalog governance.
  • Monitor platform and pipeline health using Azure Monitor, Log Analytics, KQL, and Azure Dashboards; triage and resolve incidents.
  • Implement robust data security and ensure compliance with data privacy regulations; manage service principals, Managed Identities, and least-privilege access.
  • Carry out routine platform operations: patching, backups, storage lifecycle, tagging, access reviews, DR readiness, and runbook execution.
  • Identify and address performance bottlenecks and data quality issues to ensure data accuracy and reliability.
  • Work with testers to ensure automated test plans are in place and agree test packs for UAT; review peers’ work and take accountability for the quality of squad deliverables.
  • Collaborate with stakeholders and analysts to understand data requirements and deliver clean, reliable, accessible data.
  • Ensure solution designs align with the Client Data Technology Strategy, maintaining and enhancing Client standards and Service Excellence.
  • Maintain technical documentation to Client standards (e.g., Grimlock) and stay current with industry trends, driving continuous improvement and innovation., * Databricks: hands-on experience building and optimizing pipelines, managing Delta Lake, and administering workspaces (cluster policies, Unity Catalog, Secret Scopes, Workflows).
  • Python / PySpark: strong programming skills for data processing, automation, and scripting.
  • Azure data stack: Synapse, Databricks, ADLS Gen2, Key Vault including Linked Services, Managed Identity, and Spark Pool configuration.
  • Azure platform fundamentals: compute, storage, networking (VNets, NSGs, Private Endpoints), identity and RBAC.
  • CI/CD: GitHub Actions (with OIDC federation) and/or Azure DevOps for data and platform deployments.
  • Infrastructure-as-Code: Pulumi (or Terraform / Bicep) across multiple environments.
  • Scripting: PowerShell and Bash for platform automation.
  • Monitoring & observability: Azure Monitor, Log Analytics, KQL.
  • Big data file formats: Parquet and Delta Lake.
  • Cloud-native data modelling and ETL/ELT frameworks on Azure.

Good to Have

  • Azure certifications: AZ-104, AZ-400, DP-203.
  • Azure Data Factory (ADF), Microsoft Purview, Microsoft Fabric.
  • Data governance: lineage, cataloguing, sensitivity labels.
  • Event-driven architectures: Kafka / Azure Event Hubs.
  • Delta Live Tables, MLflow.
  • IDMC Secure Agent, Power Automate flows.
  • Security baselines: CIS / NIST.
  • Observability tooling: OpenTelemetry, Datadog.
  • AI tools and their application in data engineering.
  • Knowledge of the UK Insurance Market.
  • Agile / Scrum delivery experience.

Requirements

Do you have experience in Unity?, Do you have a Master’s degree?, We are seeking a skilled and experienced Senior Data / Platform Engineer to join our Data & Analytics team. This hybrid role combines hands-on data engineering on Databricks and Azure Synapse with platform administration responsibilities across our cloud data estate. The role holder will design, build, and operate scalable data pipelines while also maintaining the underlying Azure platform including infrastructure-as-code (Pulumi), CI/CD automation, monitoring, security, and Databricks workspace administration. The ideal candidate combines strong Python/PySpark engineering skills with deep Azure platform knowledge and a service-excellence mindset, ensuring the Client Data Technology platform remains secure, reliable, and aligned to Client standards., * Bachelor’s or Master’s degree in Computer Science, Information Systems, or a related field, with 610 years of relevant experience in data engineering and Azure platform administration.

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