远程工作雷达

高级分析工程师

Senior Analytics Engineer

开发工程限定地区(需当地身份)与中国几乎无重叠,需长期倒时差
公司Digible
薪资$140,000 - $160,000/年
工作地点United States
地域资格限定地区(需当地身份)
时区要求与中国几乎无重叠,需长期倒时差
用工类型permanent
发布时间2026-08-05
数据来源4dayweek.io
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注意地域限制:该职位明确限定在 United States 招聘。如果你是位于中国大陆的求职者,通常需要当地工作身份才能投递,或需与雇主确认是否接受独立合同(Contractor)形式合作。
作息提示:与中国几乎无重叠,需长期倒时差。

### **我们是谁**

Digible 是一家成立于 2017 年的私营数字营销公司,致力于为多家庭行业提供前沿解决方案。我们提供全套数字服务,以及 Fiona,我们的预测分析平台——首个同类产品。

在 Digible,我们自豪于协作、透明和真实的团队文化。自 2021 年以来,我们被列为科罗拉多州最佳工作场所之一,并在多家庭行业最佳工作场所排名中位列第 8 名。从我们的招聘流程到全员会议和全体大会,我们的价值观贯穿我们所做的每一件事。

我们相信多样性推动创新,我们努力创造一个包容的环境,让每个人都能带着真实的自我来工作。如果你准备开启职业生涯中最出色的工作,我们期待你的加入!

### **核心价值观**

- **真实性** — 对待所有人,以坚定和真诚的方式行动和沟通。
- **好奇心** — 相信对工作的深入根本的好奇心(“为什么”)是公司创新和发展的关键。
- **专注** — 集体意志,专注于交付成果并最终承担责任。
- **谦逊** — 认识并每天实践“我们”永远大于“我”。
- **幸福** — 做出优先考虑热情和热爱我们所做之事的决定。

### **职位描述**

Digible 正在寻找一名 **高级分析工程师** 加入我们的团队!

我们的数据团队负责驱动 Fiona 和 Digible 内部决策的平台和分析——从数据摄入,经过受控的语义层,到我们约 1000 家多家庭客户和内部团队依赖的商业智能(BI)。该团队位于一个约 20 人的技术部门内,并与产品、工程和业务相关方紧密合作。

这是一个深度参与数据仓库战略的核心角色。你将负责我们奖章架构中的 **银层和金层**,构建和管理 **语义层**,为每个指标提供单一权威定义,并塑造我们的利益相关方日常依赖的 **商业智能工具和标准**。当我们的数据工程师负责数据摄入和青铜层时,你将负责从建模数据到决策的路径——使我们的数据保持一致,仓库快速且成本高效,并使我们的分析实现自助式使用。

你将向数据总监汇报,与数据工程师紧密合作。

查看英文原文

### **Who We Are**

Digible is a privately owned and operated digital marketing company founded in 2017 with a mission to bring cutting-edge solutions to the multifamily industry. We offer a full suite of digital services, alongside Fiona, our predictive analytics platform—the first of its kind.

At Digible, we take pride in our collaborative, transparent, and authentic culture. Since 2021, we've been recognized as a Top Workplace in Colorado and secured the #8 spot in the Best Places to Work Multifamily rankings. From our hiring process to our All Hands meetings and Town Halls, our values are at the core of everything we do.

We believe diversity fuels innovation, and we strive to create an inclusive environment where everyone can bring their authentic selves to work. If you're ready to do the best work of your career, we'd love to have you on the team!

### **Core Values**

- **Authenticity** — The commitment to be steadfast and genuine with our actions and communication toward everyone we touch.
- **Curiosity** — The belief that a deep and fundamental curiosity (the "why") in our work is vital to company innovation and evolution.
- **Focus** — The collective will to remain completely devoted and ultimately accountable to our deliverables.
- **Humility** — The recognition and daily practice that "we" is always greater than "I".
- **Happiness** — The decision to prioritize passion and love for what we do above everything else.

### **The Role**

Digible is looking for a **Senior Analytics Engineer** to join our team!

Our Data team owns the platform and analytics that power Fiona and the decisions made across Digible — from ingestion, through a governed semantic layer, to the BI our ~1,000 multifamily clients and internal teams rely on. The team sits within a ~20-person technology department and partners closely with Product, Engineering, and business stakeholders.

This is a deeply hands-on role at the center of our data warehouse strategy. You'll own the **Silver and Gold layers** of our medallion architecture, build and govern the **semantic layer** that gives every metric a single, authoritative definition, and shape the **BI tooling and standards** our stakeholders rely on every day. Where our Data Engineers own ingestion and the Bronze layer, you own the path from modeled data to decisions — making our numbers consistent, our warehouse fast and cost-efficient, and our analytics self-serve.

You'll report to the Director of Data, partner with Data Engineering on the Bronze-to-Silver handoff, and work with analysts and business stakeholders to translate their questions into trustworthy models and metrics.

If you live in SQL and dbt, care deeply about metric integrity and warehouse performance, leverage AI to accelerate your work, and believe data quality is a product — we'd love to meet you.

### **You'll Love This Job If You**

- Embrace Digible's core values: authenticity, curiosity, focus, humility, and happiness
- Enjoy writing production-grade SQL and dbt models, and think in terms of clean, layered, well-tested transformations
- Have experience across the modern data stack (we use dbt, Snowflake, Fivetran, Prefect) and an opinion on where it should go next
- Believe a metric should be defined once and trusted everywhere — and get satisfaction from killing metric drift and duplicate definitions
- Care about warehouse performance and cost as a first-class concern, not an afterthought
- Enjoy turning ambiguous stakeholder questions into governed, reusable data products and self-serve BI
- Use AI tools as a natural part of your engineering workflow — you see AI as an accelerator for how you build, debug, and deliver
- Have an insatiable appetite for learning and always want to be working on your craft
- Approach challenges with a customer-first mentality and curiosity
- Thrive in ambiguity, leaning on resourcefulness and customer understanding in an open and empathetic culture
- Are excited to contribute to team growth through pairing and shared learning

### **What You'll Do**

- **Drive data warehouse strategy and performance** — shape our modeling standards, materialization strategy, and query performance; tune for both speed and cost; and help evaluate and execute the direction of our warehouse (Snowflake today, with alternatives under active consideration)
- **Own Silver- and Gold-layer modeling in dbt** — build clean, documented, tested, and governed models, and lead the effort to consolidate redundant pre-materialized views, resolve metric drift, and correct non-additive measures at risk of bad re-aggregation
- **Build and govern the semantic layer** — establish a single source of truth for metric definitions, eliminate divergent measure definitions across models, and keep definitions portable as our warehouse evolves
- **Lead BI tooling strategy and enablement** — standardize our BI stack, build governed data products, and enable trustworthy self-serve analytics
- **Partner with stakeholders and analysts** — translate business questions into durable models and metrics, and establish the best practices, governance standards, and tooling that let upstream teams own their domain data well without it becoming the wild west
- **Troubleshoot data quality and consistency issues** — drive toward root cause and long-term fixes across the transformation and consumption layers
- **Contribute to platform evolution** — identify opportunities to optimize, refactor, or scale our analytics infrastructure, and stay informed on developments in the modern data stack, introducing tools and processes that improve our workflows

### **How Success Will Be Measured**

- Core metrics have a single, governed definition in the semantic layer, and metric drift and duplicate or ad-hoc definitions are measurably reduced.
- Silver and Gold models are documented, tested, and performant — with warehouse cost and query times flat or improving as data volume and client count grow.
- Analysts and business stakeholders self-serve trusted metrics through standardized BI, cutting down on one-off data pulls and disputes over what the numbers mean.

### **What You Should Have**

- 5-7+ years of data/analytics engineering experience, including at least 2 years in a senior capacity
- Expert proficiency with SQL and data modeling tools (dbt, dataform, SQLMesh) for modeling, testing, documentation and macros and strong command of dimensional modeling and medallion/layered architectures
- Hands-on depth with at least one cloud data warehouse (Snowflake and/or BigQuery), including performance and cost optimization
- Experience with a semantic / metrics layer (e.g., dbt Semantic Layer / MetricFlow, Cube, LookML, or similar) and a track record of standardizing and governing metric definitions
- Proficiency with one or more modern BI tools (e.g., Hex, Sigma, Omni, Tableau, Looker, Metabase, Lightdash)
- Working proficiency with Python for transformation, tooling, and automation
- Strong proficiency with Git and version control practices
- Demonstrated fluency with AI-assisted development tools in your engineering workflow
- Experience working with modestly-sized, fast-paced teams
- Strong communication skills and the ability to partner across engineering, product, and business stakeholders
- Working knowledge of iterative, value-focused technical delivery

### **What Will Set You Apart**

- Familiarity with digital marketing data or the multifamily/real estate industry
- Experience leading or contributing to a data warehouse migration (e.g., Snowflake ↔ BigQuery)
- Experience operating a semantic layer or large dbt project at scale, including metric governance and drift remediation
- Experience with BI write-back, reverse ETL, or finance-focused analytics

### **Physical Requirements**

- Prolonged periods sitting at a desk and working on a computer.
- Must be able to lift up to 15 pounds at times.

This role is open to candidates located within the United States.

While this job description outlines the core expectations of the role, it's not a full list of everything you'll do at Digible. We believe in leaning in by hitting your key goals, sharing insights, and finding new ways to elevate performance, process, and client success.

### **Pay, Perks and More!**

- Salary Range: **$140,000 to $160,000**
- 4-Day Work Week (32-Hour Work Week)
- US Remote — Work From Anywhere
- Discretionary bonus
- 3 weeks PTO + Sick Leave + Bereavement
- 11 paid holidays (not counting ones that fall on a Friday)
- 401(k) + Match
- 75% Employer-Paid Health Benefits (Medical, Dental, Vision)
- Mental and Physical Wellness Reimbursement ($75/mo each)
- $1,000/year travel fund (after 3+ years)
- Paid Parental Leave
- Dog-Friendly Office
- Monthly Social Events
- Weekly lunches and snacks for in-office employees

##### HEADS UP! We believe in transparency throughout our hiring process. To help us ensure a great fit, we'll ask you to share a few professional references during the hiring process who can speak to your experience and skills. It’s all part of our commitment to open, honest communication and our core values: Focus, Authenticity, Humility, Curiosity, and Happiness.

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