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Data Engineering

Transform Data for AI

Engineering reliable data pipelines to power analytics and AI

Data Engineering for Analytics and AI-Driven Enterprises

Data engineering is about building a foundation for reliable analytics and AI.

Alletec helps you:

Consolidate data from multiple sources
Ensure data accuracy and consistency
Build production-grade data pipelines
Reduce dependency on manual data handling
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“The Microsoft Fabric Data Platform has transformed our reporting and analytics. We no longer face ERP refresh limitations and now have real-time insights across systems. This foundation positions us to leverage AI and advanced analytics for future community impact.”
Kerry Bird, One FoundationRead Full Case Study

Data Engineering Challenges

The most common data infrastructure challenges that organizations face include:

Data Silos and Integration Complexity

Disconnected systems that require constant manual intervention for data integration. This means - different teams are likely working from different versions of the truth.

Quality and Reliability

Inconsistent and/or incomplete data impacts decision-making. Analysts often end up spending 60 to 80% of their time just on data preparation that they can use for analysis.

Inability to Scale

Legacy infrastructure begins to crack when data volumes grow rapidly. This becomes a major roadblock in the adoption of AI and advanced analytics.

Delayed Time-to-Insight

Data related issues naturally result in significant delays. This impacts the ability of the business to leverage opportunities and becomes a competitive disadvantage.

Our Data Engineering Services

Enterprise Data Ingestion & Integration

We help organizations with secure and automated ingestion of data from diverse organizational data sources - ERP, CRM, SaaS platforms, databases, files, APIs, and event streams - into a unified data environment.

Microsoft Fabric Data Pipelines
Azure Data Factory
Fabric Event Streams & native connectors
Business Impact

Quicker onboarding of new data sources

Reduced manual data movement

Consistent and repeatable ingestion processes

Data Transformation & Business Modeling

We transform raw data into structured business-ready datasets. They are aligned to reporting, analytics, and AI needs, so the business is working from a single reliable version of the truth.

Fabric Lakehouse
SQL and Spark workloads
Business Impact

Consistent KPIs and metrics

Reduced reconciliation and reporting errors

Data business leaders and AI can rely on

Batch & Real-Time Data Processing

We design and implement scheduled batch pipelines and real-time streaming pipelines based on business responsiveness requirements.

Fabric Real-Time Analytics
Event Streams
Azure Event Hubs
Business Impact

Near real-time operational visibility

Faster response to business events

Support for event-driven use cases

Data Pipeline Orchestration & Reliability

We enable orchestration, monitoring, alerting, and recovery mechanisms. This ensures that data pipelines run reliably.

Fabric Pipeline Orchestration
Azure Monitoring and Logging
Business Impact

Reduced data delays and broken dashboards

Faster issue detection and resolution

Lower operational and compliance risk

Databases

Is your data ready for AI success?

Take the self-assessment to see your data maturity score and uncover how close your organization is to being AI-ready

How Data Engineering Enables Analytics & AI

Alletec’s data engineering services form the foundation for:

Enterprise Power BI analytics
Predictive and generative AI solutions
AI agents and copilots
Embedded analytics in business applications

By ensuring data is accurate, timely, and governed, we help organizations move analytics and AI initiatives from pilots to production.

Industries We Support

Manufacturing & Supply Chain

ERP and IoT data pipelines bring production and supply chain analytics together. This gives teams visibility into integrated operations like - what is running, what is delayed, which machines are at risk. This can create a foundation for predictive maintenance.

Retail & Distribution

Sales, inventory, and pricing data pipelines provide near real-time demand visibility - across stores and channels. It enables unified channel analytics to show what is selling, what is running out, and what actions are needed to prevent revenue leaks.

Financial Services

Financial and transaction data consolidation brings all critical numbers into one place. This creates a traceable pipeline which is audit-ready and can be relied upon by finance and operations. This becomes the basis for Risk and Performance analytics.

Professional Services

Project, billing, and utilization data pipelines feed unified operational and financial reporting. This enables building an understanding of the project and the business. project status, how much is being invested, what is being billed, and where margins or capacity are becoming a cause of concern.

Engineering with Governance & Control

Data Engineering requires built in processes and technology for quality, security, and governance. Our pipelines include:

Validation and quality checks at every stage
End-to-end traceability
Secure, role-based access
Alignment with enterprise governance frameworks

Why Alletec

Enterprise Systems Expertise

  • ~ 25 years background in providing Dynamics 365 ERP and CRM systems
  • Deep understanding of several industries - manufacturing, professional services, retail & distribution, banking & financial services, EPC, Travel and Education
  • Experience integrating legacy systems, and also modernizing legacy applications

Microsoft Platform Expertise

  • Providing solutions on the full Microsoft stack – AI Business Solutions, Cloud & Data Platforms, Security
  • Dedicated Data engineering team - Azure Data Engineer, Fabric Analytics Engineer, Solutions Architect
  • Experienced on Fabric - Microsoft’s unified data platform

Integrated Capability

  • Seamless alignment between data engineering, analytics, and AI
  • End-to-end delivery from strategy to operations
  • Integration with Power BI, Azure ML, and business application
  • Ongoing managed services and support options

Get Started

Option 1: Data Engineering Readiness Assessment

Made for: Organizations exploring data engineering modernization or experiencing data quality/reliability issues
Duration: 1-2 weeks
Investment: Fixed fee, credited toward full implementation
What You Get
  • Current-state data architecture evaluation
  • Data quality and pipeline health assessment
  • Identification of quick wins and long-term opportunities
  • High-level roadmap with estimated timeline and investment
  • No obligation to proceed

Option 2: Proof of Concept

Ideal for: Organizations wanting to validate the approach with real data before broader rollout
Duration: 4-6 weeks
Investment: Fixed fee, credited toward full implementation
What You Get
  • Working prototype with your actual data sources
  • Demonstration of Microsoft Fabric or Azure capabilities
  • Technical validation of approach and architecture
  • Detailed implementation plan and ROI projection
  • Risk-free validation before full commitment

Option 3: Production Implementation

Created for: Organizations ready to modernize their data engineering infrastructure with a proven partner
Duration: 12-16 weeks (typical)
Investment: Based on scope, typical range $50K - $250K
What You Get
  • Production-ready data pipelines and infrastructure
  • Integrated data quality and governance
  • Monitoring, alerting, and operational runbooks
  • Comprehensive training for your team
  • 90-day post-launch support included

Ready to Strengthen Your Data Foundation?

Alletec’s data engineering practice combines Microsoft platform expertise with battle-tested methodologies. We deliver solutions that are production-ready and scalable.

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Got questions about Microsoft Data Engineering? Check out our FAQs for best answers

Data engineering is the practice of building and managing data pipelines that move data from source systems into analytics and AI environments. This includes integrating data from multiple systems, cleaning and transforming it, and structuring it in data lakes and data warehouses so it is reliable, governed, and ready for use.