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Senior Data Engineer

Internetwork ExpertSydney, New South Wales🇦🇺AustraliaPosted 2 May 2026

Why This Role Stands Out

This role offers a fantastic opportunity to design and build cutting-edge data platforms for impactful client projects, utilizing modern technologies like Databricks and Snowflake. You'll thrive here if you are a hands-on engineer passionate about solving complex data challenges and shaping innovative data architectures. Embrace the flexibility of a hybrid work model while contributing to a company that truly engineers data to life.

Quick Overview

Work Type
Hybrid
Schedule
Full Time
Level
Mid Senior

Job Description

Senior Data Engineer Who We Are

Simple Machines is a global, independent technology consultancy operating across Sydney, New Zealand, London, and Poland. We design and build modern data platforms, intelligent systems, and bespoke software at the intersection ofData Engineering, Software EngineeringandAI.

We work with enterprises, scale-ups, and government to turn messy, high-value data into products, platforms, and decisions that actually move the needle.

We don't do generic. We build things that matter -We engineer data to life .

The Role

This is ahands-on senior engineering role, not an architecture-only seat and not a support function. You'll be responsible for technical direction, platform design and architectural decision-making.

You'll design and buildgreenfield data platforms, real-time pipelines, and data products for clients who are serious about using data properly. You'll work in small, high-calibre teams and operate close to both the problem and the client.

If you enjoy solving hard data problems, shaping modern architectures (data mesh, data products, contracts), and delivering real outcomes - this is your lane.

What You'll Be Doing

Lead Platform & Architecture Design

  • Own the end-to-end architecture of modern, cloud-native data platforms
  • Design scalable data ecosystems usingdata mesh, data products, and data contracts
  • Make high-impact architectural decisions across ingestion, storage, processing, and access layers
  • Ensure platforms are secure, compliant, and production-grade by design

Build Modern Data Platforms

  • Design and deliver cloud-native data platforms usingDatabricks, Snowflake, AWS, and GCP
  • Apply modern architectural patterns:data mesh, data products, and data contracts
  • Integrate deeply with client systems to enable scalable, consumer-oriented data access

Develop High-Performance Pipelines

  • Build and optimisebatch and real-time pipelines
  • Work with streaming and event-driven tech such asKafka, Flink, Kinesis, Pub/Sub
  • Orchestrate workflows usingAirflow, Dataflow, Glue

Work at Scale

  • Process and transform large datasets usingSpark and Flink
  • Design systems that perform in production - not just on paper

Own Data Storage & Performance

  • Work across relational, NoSQL, and analytical stores (Postgres, BigQuery, Snowflake, Cassandra, MongoDB)
  • Optimise storage formats and access patterns (Parquet, Delta, ORC, Avro)

Cloud, Security & Governance

  • Implement secure, compliant data solutions withsecurity by design
  • Embed governance without killing developer velocity

Consult and Influence

  • Work directly with clients to understand problems and shape solutions
  • Translate business needs into pragmatic engineering decisions
  • Act as a trusted technical advisor, not just an order taker

Technical Leadership & Quality

  • Set engineering standards, patterns, and best practices across teams
  • Review designs and code, providing clear technical direction and mentorship
  • Raise the bar on data quality, testing, observability, and operational excellence
What We're Looking For

Core Engineering Strength

  • StrongPython and SQL
  • Deep experience withSparkand modern data platforms (Databricks / Snowflake)
  • Solid grasp of cloud data services (AWS or GCP)

Architecture & Design Judgement

  • Demonstrated ownership of large-scale data platform architectures
  • Strong data modelling skills and architectural decision-making ability
  • Comfortable balancing trade-offs between performance, cost, and complexity

Data Platform Experience

  • Built and operatedlarge-scale data pipelinesin production
  • Strong data modelling capability and architectural judgement
  • Comfortable with multiple storage technologies and formats

Engineering Discipline

  • Infrastructure-as-code experience (Terraform, Pulumi)
  • CI/CD pipelines using tools likeGitHub Actions, ArgoCD
  • Data testing and quality frameworks (dbt, Great Expectations, Soda)

Delivery & Consulting Mindset

  • Experience in consulting or professional services environments
  • Strong consulting instincts - able to challenge assumptions and guide clients toward better outcomes
  • Comfortable mentoring senior engineers and influencing technical culture
Benefits Why Simple Machines
  • You'll work oninteresting, high-impact problems
  • You'll buildmodern platforms, not maintain legacy mess
  • You'll be surrounded by senior engineers who actually know their craft
  • You'll have autonomy, influence, and room to grow

If you're a senior data engineer who wants to build properly, think clearly, and deliver real outcomes - we should talk.

Skills

GCP
MongoDB
SQL
AWS
Flink
Snowflake
Airflow
ArgoCD
BigQuery
Cassandra
Databricks
GitHub Actions
Kafka
Pulumi
Python
Terraform
dbt

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