Data Engineer

Posted 15 Days Ago
New York, NY, USA
In-Office
140K-155K Annually
Mid level
Logistics • Real Estate
The Role
Build and own the intelligence layer of an analytics engine by creating knowledge graphs, RAG and LLM workflows, scalable data pipelines, provenance systems, and backend APIs. Partner directly with investment analysts and asset managers to identify needs and deliver reliable, low-latency analytical insights. Responsibilities include productionizing ML applications, managing data quality and lineage, developing graph-based retrieval, and exposing structured data and ML outputs to applications.
Summary Generated by Built In

Link Logistics Real Estate (“Link”) is a leading operator of warehouses and business parks, specializing in last-mile logistics real estate. Established by Blackstone in 2019, the company connects consumption, technology, and the supply chain across its portfolio, which spans half a billion square feet. We leverage our scale, proprietary data and insights, and foundational focus on sustainability to drive success for our customers’ businesses and deliver value for our stakeholders. We put our people, customers, and communities first and find ways to make a conscious, positive impact where we live and work. Every day, we work to reinvent and lead our industry forward by thinking bigger and challenging the status quo.

We're hiring a hybrid ML/Backend Engineer to own the intelligence layer of Link's Analytics Engine. This is the connective tissue role: you'll design the pipelines that bring disparate real estate data to life, build the knowledge graphs and retrieval systems that make that data queryable by LLMs, and architect the backend services that surface insights to investment teams in real time.

You won't be handed a spec. You'll talk to investment analysts and asset managers, identify where analytical leverage is lost today, and build systems that close that gap — often combining classical ML, graph-based reasoning, and LLM-native workflows in the same solution.

RESPONSIBILITIES:

  • Knowledge Graph & Retrieval — Design graph-based data structures encoding relationships across markets, assets, tenants, and transactions. Build retrieval pipelines (RAG, hybrid search, structured queries) that give LLMs accurate, contextually rich grounding.

  • LLM Workflow Automation — Develop rule-based and agentic LLM workflows that automate investment analytical tasks. Own prompt engineering, eval frameworks, and production reliability.

  • Data Pipelines — Build ETL/ELT workflows that ingest, normalize, and enrich large-scale internal and third-party datasets (property records, leasing data, macro signals, alt data). Every dataset should have a clear owner, update cadence, and quality SLA.

  • Data Trust & Provenance — Build systems that make data trustworthy by design: lineage tracking from source to insight, confidence scoring on derived outputs, and clear attribution so analysts always know where a number came from and how fresh it is. Treat a bad comp or stale signal as a production incident.

  • Backend API Layer — Develop and maintain APIs and services that expose ML outputs and structured data to front-end applications. Prioritize low-latency, reliability, and clean contracts with the application team.

  • Collaboration — Work directly with investment and asset management teams to understand analytical needs and iterate quickly. Treat analyst trust as a first-class product requirement.

QUALIFICATIONS:

  • 4+ years in ML engineering, backend engineering, or a role spanning both

  • Hands-on experience shipping LLM-powered applications in production — RAG pipelines, prompt engineering, eval frameworks

  • Strong Python skills; comfortable owning backend services and APIs end-to-end

  • Experience with knowledge graphs or graph databases (Neo4j or similar)

  • Proficiency building data pipelines at scale (Spark, Databricks, or equivalent)

  • Deep sensitivity to data provenance — a track record of building systems that create analyst trust, not just claim it

$140,000 - $155,000 represents the presently anticipated base compensation pay range for this position at Link.  Actual pay may vary based on various factors, including but not limited to location and experience.  

Link provides a variety of benefits to employees, including health insurance coverage, retirement savings plan, paid holidays, paid time off.

The direct compensation and benefits described above are subject to the terms and conditions of any governing plans, policies, practices, agreements, or other materials or documents as in effect from time to time, including but not limited to terms and conditions regarding eligibility.

EEO Statement

The Company is an equal opportunity employer. In accordance with applicable law, we prohibit discrimination against any applicant, employee, or other covered person based on any legally recognized basis, including, but not limited to: veteran status, uniformed servicemember status, race, color, caste, immigration status, religion, religious creed (including religious dress and grooming practices), sex, gender, gender expression, gender identity, marital status, sexual orientation, pregnancy (including childbirth, lactation or related medical conditions), age, national origin or ancestry, citizenship, physical or mental disability, genetic information (including testing and characteristics), protected leave status, domestic violence victim status, or any other consideration protected by federal, state or local law. We are committed to providing reasonable accommodations, if you need an accommodation to complete the application process, please email [email protected].

Skills Required

  • 4+ years of experience in ML engineering, backend engineering, or a role spanning both
  • Hands-on experience shipping LLM-powered applications in production
  • Experience with RAG pipelines, prompt engineering, and evaluation frameworks
  • Strong Python skills
  • Experience owning backend services and APIs end-to-end
  • Experience with knowledge graphs or graph databases such as Neo4j
  • Proficiency building data pipelines at scale using Spark, Databricks, or equivalent
  • Track record of building systems with strong data provenance and analyst trust
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The Company
HQ: New York, NY
1,308 Employees
Year Founded: 2019

What We Do

Link Logistics is a leading operator of last-mile logistics real estate. As of March 31, 2024, Link Logistics serves approximately 10,000 customers and owns, has interests in, manages or has under development logistics facilities that will represent a total of 533 million square feet across key U.S. distribution markets. Established by Blackstone in 2019, Link Logistics has the scale, footprint and proprietary insights, as well as a focus on sustainability, to drive value for our customers and stakeholders

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