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ETL-as-a-Service

Batch Data Processing

Most companies don’t have an ETL problem — they have an ownership problem. Pipelines get written by whoever needed the data first: an analyst’s Python script, a no-code chain someone set up in a hurry, a cron job on a laptop. It works, until that person changes teams and the only documentation is a Slack thread from last March.

ETL-as-a-Service means we take the whole layer off your plate. Connectors to your sources — SaaS APIs, production databases, flat files, event streams — transformation logic in version control, tested and documented, running inside your own cloud accounts with monitoring, alerting, and a named engineer who picks up when something breaks. You get a defined SLA and a predictable monthly cost instead of a growing pile of scripts with a bus factor of one.

Key Features

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API, Database & File Connectors

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Bring-Your-Own-Cloud Deploy

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Git-Backed Transformations

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CI/CD for Pipelines

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Incremental Sync

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Monitoring & Alerting

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Defined SLA & Support Window

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Full Documentation Handover

Key Advantages

Reduce Operational Costs

Handoff-Ready From Day One

Documented, tested, and genuinely yours. When you build an in-house data team later, they inherit something clean — not a rescue project.

Process More in Less Time

Runs Inside Your Cloud

Bring-your-own-cloud deployment on AWS, GCP or Azure. Your data never leaves your accounts — we operate inside them.

Data You Can Trust

Someone Owns It

A named engineer, an agreed SLA, and monitored pipelines. Not a script whose only expert left the company.

Analytics-Ready Data

One Predictable Line Item

A fixed monthly engagement instead of surprise contractor invoices or the cost and lead time of a full-time hire.

Custom Logic Implementation

Everything in Version Control

Git-backed transformations with code review and CI. Every change is traceable, reviewable, and revertable.

Scalable & Future-Ready

No Per-Row Pricing Working Against You

Built on open tooling you own, so your bill scales with your infrastructure — not with a vendor's row counter.

Google Reviews
Trust Radius
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G2

Trusted by Innovators Across Industries

The data engineering work happens underneath: pipelines that are clean, tested, and production-grade, so the AI layer on top actually holds up. That's the difference between a chatbot that impresses in a demo and an agent your team can put into a real workflow.

What Our Clients Say

Trusted by global enterprises and fast-growing startups to deliver reliable, scalable, and intelligent data solutions.

Mohit Jain

Director, Data Engineering & AI Solutions

GKCodeLabs delivered a highly responsive and natural-sounding Voice AI Agent that met our expectations perfectly. Their expertise in conversational design and real-time processing was evident throughout the project. Communication was smooth, delivery was on time, and the final product was both reliable and scalable. Highly recommended for Voice AI solutions.

Vishal Pandey

Head of Product Engineering

GKCodeLabs helped us automate our entire data ingestion pipeline, cutting manual reporting time by 70%. Their batch processing solution scales beautifully with our workloads.

Suresh M.

Cloud & DevOps Lead

We are very satisfied with the LangGraph-based workflow automation agent delivered by the vendor. They demonstrated strong expertise in designing scalable, multi-step AI workflows with clean architecture. The solution is efficient, extensible, and easy to maintain. A great partner for building advanced AI-driven automation systems.

Karthik Reddy

Director, AI & Data Platforms

GKC team successfully deployed our RAG-based application on AWS along with a seamless GraphDB migration. Their expertise in retrieval systems, cloud infrastructure, and data migration ensured a smooth transition with zero disruption. The solution is performant, scalable, and well-architected. Great execution and highly reliable team for complex AI deployments.

FAQ

Frequently Asked Questions

Here are some of the most common questions we receive from businesses exploring our solutions.

What kind of data do you work with?

We handle structured, semi-structured, and unstructured data from various sources, including databases, APIs, files, IoT devices, and streaming platforms.

Can you work in our cloud environment?

Yes, with our Bring Your Own Cloud (BYOC) model, we build and manage data pipelines securely within your existing cloud infrastructure.

What visualizations or reports can you deliver?

We create interactive dashboards and visual reports using tools like Power BI, Tableau, or custom-built frontends tailored to your KPIs.

Is your service scalable as our data grows?

Yes, all our solutions are cloud-native and built to scale with your data volume, user base, and business complexity.

AI Agents & LLM Apps Built to Run in Production

Most AI agents fail quietly - on stale data, broken pipelines, or retrieval that returns the wrong context. GKCodeLabs builds AI agents, RAG systems, and LLM applications on data infrastructure we engineer ourselves - so what you ship holds up under real traffic, not just demos.