Senior Data Engineer
Sand Tech Holdings Limited
Salary undisclosed
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Description
About Sand
Sand Technologies is a global Physical AI company using data and AI to make critical industries work better. We partner with governments, cities and enterprises to improve how essential systems operate across healthcare, water, energy, telecommunications and infrastructure.
Our work delivers proven real-world impact. We have built AI systems that help manage London’s water supply, supported telecom network planning across hundreds of cities, and developed digital healthcare platforms serving tens of millions of people across Africa. From intelligent command centers to AI-powered infrastructure platforms, we help organizations sense, analyze and act in complex environments.
Our people are ambitious, curious and relentlessly practical. Our teams work alongside clients in the field, solving hard problems and deploying solutions that last. With colleagues across Africa, Europe, the UK and the US, we operate across the full stack - from research and engineering to deployment and capability building.
Our mission is simple: to harness AI to solve humanity’s most pressing challenges.
About the role
We are looking for a Senior Data Engineer to join our UK utilities practice as the technical backbone of the data platform capability. This is a permanent role. Your first assignment is building an AI-enabled situational awareness and decision-support platform on Microsoft Azure for a major UK water utility, and from there you will continue delivering across our growing portfolio of water and energy utility clients.
Utility data landscapes are heterogeneous - operational and asset systems spanning SCADA telemetry, electronic logbooks, ERP, incident-reporting and third-party predictive platforms, connected via a mix of APIs, file transfer and manual re-entry, with streaming (MQTT) as the future state. Your mission is to establish the reusable ingestion and modelling patterns the rest of the data engineering squad follows, and to define the canonical data models that feed the analytical risk indices and the intelligence layer.
Our clients operate critical national infrastructure, so reliability, security and data governance are paramount. You won’t just write pipelines – you will set the patterns, work directly with client data owners and enterprise architects to land integrations, and mentor the mid-level and junior engineers who build alongside you.
What you’ll do
- Ingestion & Pipeline Build: Design and build robust, reusable data ingestion pipelines from clients’ operational estates into the Azure data platform, covering API, SFTP/file, batch and (future-state) streaming/MQTT patterns.
- Data Architecture & Modelling: Define the canonical data models and transformation logic that feed the analytical indices and intelligence layer; design schemas for high-performance storage, retrieval and analysis using lakehouse patterns.
- Patterns & Standards: Establish and document ingestion and modelling patterns so mid-level and junior engineers can replicate them consistently as the platform scales.
- Client Collaboration: Partner with client data owners, data stewards and enterprise architecture teams to agree access, security and integration approaches per source system.
- Quality, Governance & Operations: Own data quality, lineage, observability and pipeline reliability across the platform; implement governance and security measures appropriate to a regulated, critical-infrastructure environment.
- Leadership & Mentoring: Mentor and unblock the mid-level and junior data engineers, review their work, and promote engineering best practice across the squad.
Who you are
- Proven experience as a Senior Data Engineer, with hands-on experience building and optimising production data pipelines and designing data architectures.
- Strong commercial experience on the Azure data platform (e.g. Data Factory, Synapse, Fabric, ADLS, Databricks or equivalent).
- Expert SQL and Python; solid data modelling across dimensional and/or lakehouse patterns.
- Proven experience integrating messy, heterogeneous source data - transferred via API, file transfer, batch or streaming - into coherent, well-modelled datasets.
- Experience setting standards and patterns, and leading or mentoring other engineers in delivery.
- Comfortable working directly with client data owners, stewards and architects to land integrations, and able to communicate technical concepts to non-technical stakeholders.
- Knowledge of data governance, quality frameworks and security practices in regulated environments.
Desirable
- Exposure to operational technology (OT)/SCADA, IoT/asset telemetry or MQTT systems.
- Utilities, water or other asset-intensive industry experience.
- Streaming and big-data tooling (Kafka, Spark/Spark Streaming, Flink).
- Understanding of machine learning workflows and how to support them with robust data pipelines.
How we work
Due to the highly collaborative and internationally distributed nature of our work, successful candidates must be comfortable operating in small teams while contributing to larger, globally coordinated efforts. A strong sense of ownership, self-motivation and discipline in maintaining clear and consistent communication through virtual collaboration tools and video conferencing is essential.
About this role
Sand Technologies is a Physical AI company working across critical infrastructure—water, energy, healthcare, and more—with real deployments across Africa, Europe and beyond. This Senior Data Engineer role sits at the technical heart of their UK utilities practice, building the data platform that powers AI-driven decision support for major water and energy operators.
Your first assignment is a situational awareness platform on Microsoft Azure for a major UK water utility, but the role is fundamentally about establishing the foundations the entire data engineering squad will build on. You'll design reusable ingestion patterns and canonical data models that connect messy, heterogeneous operational estates—SCADA telemetry, ERP systems, incident logs, third-party platforms—via APIs, file transfers, and streaming protocols. This means hands-on pipeline and architecture work, but also defining standards, documenting patterns, and ensuring data quality, lineage and governance across a regulated, critical-infrastructure environment where reliability is non-negotiable.
You'll work directly with client data owners and enterprise architects to land integrations, mentor mid-level and junior engineers, and operate in small, distributed teams across multiple geographies. The role demands strong production experience with Azure's data stack (Data Factory, Synapse, Fabric, ADLS, Databricks), expert SQL and Python, proven ability to wrangle heterogeneous data sources into coherent datasets, and comfort translating technical concepts for non-technical stakeholders. Prior exposure to operational technology, SCADA, IoT systems or utilities experience is valued but not required; what matters is the track record of setting standards and leading others in delivery.
Pay for this role
The employer didn't post a pay range for this role. That usually means pay is set in negotiation, which favors whoever arrives with numbers. Check ranges on comparable Senior Data Engineer postings in your area, and analyze any offer before you accept it.
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