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Greystar

DataOps Engineer

Remote — United States (see country and timezone requirements)

Check who can apply and the requirements below before continuing.

Job description

ABOUT GREYSTAR

Greystar is a leading, fully integrated global real estate platform offering expertise in property management, investment management, development, and construction services in institutional-quality rental housing. Headquartered in Charleston, South Carolina, Greystar manages and operates over $350 billion of real estate in more than 260 markets globally with offices throughout North America, Europe, South America, and the Asia-Pacific region. Greystar is the largest operator of apartments in the United States, managing over one million units/beds globally. Across its platforms, Greystar has nearly $79 billion of assets under management, including over $34 billion of development assets and over $36.5 billion of regulatory assets under management. Greystar was founded by Bob Faith in 1993 to become a provider of world-class service in the rental residential real estate business. To learn more, visit .

JOB DESCRIPTION SUMMARY

Greystar is seeking a DataOps Engineer to join the Data Marketplace (DMP) team. This is a deeply technical, hands-on platform engineering role at the core of Greystar’s enterprise data infrastructure — a Databricks-native medallion architecture (Bronze → Silver → Gold) running entirely on Microsoft Azure. You will own the reliability, scalability, and operational excellence of the DMP platform, working within DataOps pod inside the broader Analytics Engineering umbrella.

This role is Databricks and Azure-heavy. Most of your day lives inside Databricks — Delta Live Tables, Unity Catalog, Jobs, Workflows — backed by the full Azure data services stack including ADF, ADLS Gen2, Azure Monitor, Key Vault, and more. Deep mastery of both platforms is a baseline expectation, not a differentiator.

Critically, we expect this engineer to use AI as a first-class tool in their DataOps and observability practice — today, not eventually. That means AI-driven pipeline diagnostics, LLM-assisted root cause analysis, intelligent anomaly detection, and agentic observability agents that surface issues before they reach production. If you are still approaching DataOps the same way you did three years ago, this is not the right role. We are building self-aware, self-healing data infrastructure and need an engineer who is already operating that way.

You will also own the full deployment lifecycle — promoting data pipeline changes and platform configurations across dev, staging, and production environments using GitHub Enterprise and Linear for structured release management. Strong CI/CD discipline, environment promotion hygiene, and release coordination are as important here as pipeline engineering craft.JOB DESCRIPTION

Key Responsibilities

AI-Driven DataOps & Observability

Implement AI-powered observability — using LLMs and ML models to detect pipeline drift, classify anomalies, predict SLA risk, and generate automated incident summaries

Build agentic monitoring workflows that proactively surface data quality degradation, pipeline dropout, schema drift, and volume anomalies across all DMP layers

Integrate AI tooling (Databricks Mosaic AI, Genie, OpenAI APIs, or equivalent) into operational DataOps processes — not as experiments, but as production-grade capabilities

Develop and maintain AI-assisted root cause analysis tooling to reduce MTTR on pipeline failures, with structured learnings fed back into the platform

Contribute to Greystar’s 18-month agentic AI roadmap, leading near-term delivery of self-healing pipeline capabilities

Azure Infrastructure & Integration

Operate the full Azure data services stack supporting DMP: ADLS Gen2, Azure Data Factory (ADF), Azure Monitor, Log Analytics, Key Vault, and Event Hub

Design and maintain ADF pipelines for source system ingestion, including orchestration patterns for multi-tenant ERP environments (Yardi, Entrata, RealPage)

Collaborate with Azure infrastructure and cloud engineering teams on networking, identity, security, and resource provisioning

Drive cost governance through Azure Cost Management, Databricks DBU optimization, and storage lifecycle policies

Databricks Platform Engineering

Own the design, build, and optimization of data pipelines on Databricks using Delta Live Tables (DLT), PySpark, Workflows, and Jobs across the full DMP medallion stack

Administer and govern the Databricks workspace: Unity Catalog, cluster policies, access controls, compute configurations, and Delta table lifecycle management

Tune Spark jobs for performance, reliability, and cost — profiling bottlenecks, optimizing partitioning, managing Z-ordering, and controlling compute spend

Leverage Databricks Mosaic AI and Genie to build AI-native DataOps capabilities including intelligent pipeline monitoring, anomaly detection, and natural language data access

Architect and enforce DMP platform standards: naming conventions, schema evolution policies, SLA tiers, and medallion layer contracts

CI/CD & Environment Deployments

Own the full deployment pipeline for DMP data workflows — promoting changes from development through staging to production with rigor and minimal disruption

Build and maintain CI/CD workflows using GitHub Enterprise, including branch strategies, pull request automation, environment-specific configuration management, and release gating

Use Linear for sprint planning, release tracking, and issue management across deployment cycles; coordinate engineering work items with cross-functional stakeholders

Enforce deployment standards: automated testing gates, rollback procedures, change documentation, and environment parity controls

Partner with the analytics engineering and integration teams to align deployment cadences across the DMP stack

Data Quality & Governance

Instrument DQ checks across Bronze, Silver, and Gold layers covering completeness, consistency, accuracy, uniqueness, and referential integrity

Partner with Brett Finley’s Data Governance team to enforce data contracts, ownership standards, and quality SLAs within Unity Catalog

Build feedback loops between DQ scoring, pipeline observability, and upstream source owners to drive systemic data reliability improvements

Collaboration & Documentation

Partner with analytics engineers, data governance, and product stakeholders to align pipeline and platform design with business requirements

Produce thorough technical documentation — runbooks, deployment playbooks, incident post-mortems, ADRs, and platform specs

Participate in on-call rotation and support SLA commitments for business-critical DMP data domains

Qualifications

Required

7+ years of DataOps, data engineering, or platform engineering experience in a production environment

Expert-level hands-on experience with Databricks: Delta Live Tables, Jobs/Workflows, Unity Catalog, Spark performance tuning, and Delta Lake internals

Strong command of the Azure data services ecosystem: ADF, ADLS Gen2, Azure Monitor, Log Analytics, Key Vault, and related services

Demonstrated, production use of AI tools in DataOps or data observability workflows — LLM-assisted diagnostics, intelligent alerting, agentic monitoring, or equivalent

Proven CI/CD experience using GitHub Enterprise — branch strategies, PR automation, environment promotion, and release management for data pipelines

Solid Python and/or Scala skills for pipeline development; SQL fluency for Gold layer transformation and DQ validation

Hands-on experience with ADF pipeline design and orchestration at scale

Experience with medallion / lakehouse architecture patterns and multi-environment deployment discipline

Strong collaborative skills across engineering, governance, and business stakeholder teams

Preferred

Experience with Linear for engineering sprint management and release tracking

Familiarity with Databricks Mosaic AI, Genie, or other AI-native Databricks capabilities

Exposure to agentic AI frameworks or MCP (Model Context Protocol) server integrations

Background in real estate, property management, or multi-source ERP data environments (Yardi, Entrata, RealPage)

Experience with Cosmos DB, Azure SQL, or similar operational data stores alongside lakehouse platforms

Knowledge of data governance frameworks, data lineage tooling, and metadata management within Unity Catalog

Background in legacy BI migration or platform modernization programs

What We Offer

A high-impact role at the center of Greystar’s enterprise data transformation

Collaborative, engineering-driven team culture with a strong focus on craft, automation, and continuous improvement

Access to cutting-edge tooling — Databricks, full Azure stack, GitHub Enterprise, and an active AI innovation agenda

Competitive compensation, comprehensive benefits, and flexible work arrangements

Opportunity to define the DataOps discipline and lead Greystar’s self-healing pipeline and agentic AI roadmap

The salary range for this position is $120,000 - $150,000 USD Annually.

Additional Compensation:

Many factors go into determining employee pay within the posted range including business requirements, prior experience, current skills and geographical location.

Corporate Positions: In addition to the base salary, this role may be eligible to participate in a quarterly or annual bonus program based on individual and company performance.

Onsite Property Positions: In addition to the base salary, this role may be eligible to participate in weekly, monthly, and/or quarterly bonus programs.

Robust Benefits Offered*:

Competitive Medical, Dental, Vision, and Disability & Life insurance benefits. Low (free basic) employee Medical costs for employee-only coverage; costs discounted after 3 and 5 years of service.

Generous Paid Time off. All new hires start with 15 days of vacation, 4 personal days, 10 sick days, and 11 paid holidays. Plus your birthday off after 1 year of service! Additional vacation accrued with tenure.

For onsite team members, onsite housing discount at Greystar-managed communities are available subject to discount and unit availability.

6-Week Paid Sabbatical after 10 years of service (and every 5 years thereafter).

401(k) with Company Match up to 6% of pay after 6 months of service.

Paid Parental Leave and lifetime Fertility Benefit reimbursement up to $10,000 (includes adoption or surrogacy).

Employee Assistance Program.

Critical Illness, Accident, Hospital Indemnity, Pet Insurance and Legal Plans.

Charitable giving program and benefits.

*Benefits offered for full-time employees. For Union and Prevailing Wage roles, compensation and benefits may vary from the listed information above due to Collective Bargaining Agreements and/or local governing authority.

Greystar will consider for employment qualified applicants with arrest and conviction records.

Greystar is an equal opportunity employer and does not discriminate in employment on the basis of race, color, religion, sex (including pregnancy, sexual orientation, and gender identity), national origin, age, disability, genetic information, military or veteran status, or any other characteristic protected by applicable law.

This position may be performed remotely anywhere within the United States except the state of Alaska.

Important Notice: Greystar will never request your banking details or other sensitive personal information during the interview process. Greystar does not conduct any interviews via text or messaging, and all communication will come from official Greystar email addresses (@greystar.com). If you receive suspicious requests, please report them immediately to .

ANTICIPATED CLOSING DATE

October 23, 2026This date may be subject to change due to evolving business needs.

Originally posted on Himalayas

Who can apply

Eligible countries: United States. Accepted UTC offsets: UTC-10, UTC-9, UTC-8, UTC-7, UTC-6, UTC-5, UTC+14. Review the full description for employer-specific work authorization, residency and schedule requirements.

Ready for your next step?Apply on the official website
Apply on Himalayas ↗

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