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Data Architect

Data Architect

Anchanto
10-12 Years
  • Posted 22 hours ago
  • Be among the first 10 applicants

Job Description

The Role

We are building our enterprise data platform from the ground up and need a Data Architect to own it.

This is a greenfield, hands-on leadership role — not a consulting engagement. You will define the architecture, make the technology decisions, build the foundation, and be accountable for outcomes. You will report directly to the CTO and partner closely with a Senior Data Engineer on the same hiring cycle.

The platform will serve business analytics, operational reporting, and AI-driven capabilities across multiple markets and enterprise clients. A key deliverable is enabling AI applications and agents to consume trusted enterprise data securely via APIs and Model Context Protocol (MCP).

What You Will Own

  • Data platform architecture — Data Lake, Lakehouse, semantic layers, and data consumption patterns across structured, semi-structured, and event-based sources.
  • Ingestion and transformation pipelines — batch, streaming, and CDC-based, with proper orchestration, observability, and failure handling.
  • Data modelling — scalable analytical models covering core business domains: orders, inventory, fulfilment, logistics, marketplaces, billing, and platform performance.
  • Business analytics — governed KPI definitions, dashboards, and self-service capabilities that replace manual reporting.
  • AI data enablement — architecture for exposing authoritative, governed data to AI agents through MCP and APIs, with appropriate access controls and tenant isolation.
  • Data governance and compliance — data quality, lineage, PII classification, and controls that meet enterprise security and privacy obligations across multiple jurisdictions.
  • Platform reliability — monitoring, SLAs, incident management, and operational runbooks so the platform runs as a production service.

What We Expect

First 90 days:

  • Weeks 1–4: Assess the data landscape, produce an enterprise architecture proposal.
  • Weeks 5–8: Deliver the first production pipeline and a priority BI dashboard.
  • Weeks 9–12: Define common KPI models for two business domains and deliver the first MCP-based data capability for an AI agent.

6–12 months:

  • Production data platform operational with automated pipelines for priority datasets.
  • Governed business models and trusted KPI definitions in active use by the business.
  • Dashboards live and replacing manual reporting.
  • Architecture for secure AI data consumption implemented, with initial MCP capabilities in production.
  • Platform operational practices — quality, lineage, monitoring, cost controls — established and running.

What We Are Looking For

  • 10+ years across data engineering, data platforms, or data architecture — with real architecture ownership, not just delivery.
  • Proven experience designing and building enterprise Data Lake, Warehouse, or Lakehouse platforms.
  • Strong SQL, data modelling, pipeline design, and cloud-native (preferably AWS) skills.
  • Experience with governance, data quality, lineage, and compliance — including PII and privacy controls.
  • Hands-on enough to validate designs and build in the early phase; structured enough to define standards that scale.
  • Experience in eCommerce, logistics, marketplace, or B2B SaaS is strongly preferred — the domain is complex and ramp time matters.

Desirable: Practical experience with MCP, LLM/AI integration, semantic layers, RAG, or secure enterprise data access for AI systems.

The Opportunity

This is a founding role. The data platform does not yet exist. You will define what good looks like at Anchanto — and build it.

If you are energised by greenfield architecture, comfortable with high ownership, and capable of moving fluently from business question to data pipeline to AI consumption — we want to talk.

More Info

Job Type:
Industry:
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Key Skills

Semantic layers

Batch streaming

Failure handling

AI integration

Operational runbooks

Lakehouse

RAG

Enterprise data access for AI systems

Observability

Cloud-native (preferably AWS)

About Company

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