Full-Time

Data Architect

Further

Further

51-200 employees

Turns data into actionable enterprise insights

No salary listed

No H1B Sponsorship

Dallas, TX, USA

Hybrid

Three on-site days per week (Tuesday–Thursday) required.

Category
Data & Analytics (1)
Required Skills
Pinecone
BigQuery
Apache Kafka
Kinesis
Postgres
ClickHouse
RAG
Databricks
Snowflake

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Requirements
  • 10+ years of data engineering, data platform, or database architecture experience, with at least 3 owning the architecture, not just the implementation.
  • Production experience with event-sourced systems. You have personally implemented or evolved an event envelope, dealt with the upcaster chain problem, and lived with the consequences of an early schema decision.
  • Deep Postgres expertise: schema design, indexing, query plan analysis, row-level security. Not "Ive used Postgres" but "I know what I'd do differently from the last team."
  • Experience with streaming platforms: Kafka, Redpanda, Pulsar, or Kinesis. You understand the difference between a topic, a partition, a consumer group, and a saga, and you've designed for all of them.
  • Production analytical data infrastructure experience: warehouse design (Snowflake, BigQuery, Databricks, ClickHouse) or modern OLAP patterns. You can take an event log and produce a queryable shape that analysts and AI systems can actually use.
  • Hands-on AI/ML data infrastructure experience: vector databases (pgvector, Pinecone, Weaviate, Qdrant), embedding pipelines, retrieval patterns. You have shipped a RAG system that worked and you know why most of them don't.
  • Strong SQL, strong enough to be the person other engineers go to.
Responsibilities
  • The canonical event envelope and schema evolution strategy: how events are versioned, how upcasters chain, how projections rebuild, and how we add fields without breaking history. You write the rules and enforce them in code review.
  • The transactional data layer: Postgres schema design, tenant isolation via row-level security, indexing strategy, query patterns, and migration discipline. Every table in a data plane carries a tenant_id and a policy. You make sure of that.
  • The read-side architecture: projection design, materialized views, semantic layer for downstream analytics and AI consumption. You decide how we move from event log to queryable shape and how that shape stays cheap to maintain.
  • The AI/ML data infrastructure: vector stores, embedding pipelines, retrieval-augmented generation patterns, feature stores where applicable, and the lineage that lets us trust what comes back.
  • Data governance: lineage, retention, deletion (right-to-be-forgotten in a multi-tenant event-sourced system is a real problem and you'll solve it), and the audit story for every piece of customer data we touch.
  • The operational playbook: projection rebuilds, replay procedures, schema migrations on hot data, vector index maintenance, capacity planning. If the data layer goes sideways at 2am, your runbook is what saves the on-call engineer
Desired Qualifications
  • Drizzle, Prisma, or another modern TypeScript ORM at production depth.
  • Workflow engine experience (Temporal, Cadence, Airflow) and the data implications of long-running processes.
  • Background in feature stores, ML pipelines, or model evaluation infrastructure.
  • Semantic layer experience: dbt, Cube, or Malloy.
  • Compliance experience: SOC 2, HIPAA, GDPR, data residency. The audit story is part of the data story.
  • Open-source work or public writing on data architecture.

Further delivers data analytics, cloud, and AI solutions for enterprise organizations, helping them turn raw data into actionable insights. Its offerings include data platforms and AI-powered tools hosted in the cloud, with data ingestion, storage, analytics, dashboards, and workflows that translate data into usable insights. As a Google Premier Partner, it provides high-level product support to implement, manage, and optimize these solutions for customers. The company differentiates itself with end-to-end, enterprise-grade capabilities and specialized higher-education solutions aimed at delivering practical, measurable outcomes for growth and operational efficiency.

Company Size

51-200

Company Stage

Seed

Total Funding

$1.5M

Headquarters

Atlanta, Georgia

Founded

2004

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Simplify Jobs

Simplify's Take

What believers are saying

  • Further reported record 2025 growth on January 13, 2026, with expanded partnerships.
  • Further launched Compass Marketing Intelligence in April 2025, then won enterprise client traction.
  • ChatHUE with Behr won a 2025 BIG Award, strengthening AI brand credibility.

What critics are saying

  • Further depends on Google and Adobe platform access; partner terms shift quickly by 2026.
  • Enterprise services revenue faces commoditization from Bounteous and other Adobe-Google consultancies.
  • A failed AI product cycle would undermine Further’s services story and hiring momentum.

What makes Further unique

  • Further’s 2025 Google alliance added Workspace reseller status and 200% more certifications.
  • Adobe Customer Journey Analytics specialization deepens Further’s enterprise analytics credibility in complex measurement stacks.
  • Compass Marketing Intelligence bundles conversational AI with Google Marketing Platform data for faster decisions.

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Benefits

Health Insurance

401(k) Retirement Plan

Professional Development Budget

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