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GTM赋能与规模化首席架构师,产品赋能

机器翻译
查看雇主原标题Lead GTM Enablement & Scale Architect, Product Enablement

Databricks · 美国 · From 1

职位信息来自雇主公开的招聘页面。申请前请务必在雇主官网核实详情。

为什么值得关注?

发现指数 67/100,仅依据与该职位一起存储的证据计算。

67/100 发现指数
  • 新的雇主官方职位
  • 已披露薪资
  • 稀有职位匹配

分数构成

  • 时效性 (随职位发布时间变化)+18
  • 雇主官方来源+15
  • 已披露薪资+15
  • 稀有职位+11
  • 公司来源健康度+8

该职位未包含:远程职位、提及签证担保、提及搬迁、未出现在监控的职位板上。

这些理由来自雇主自己的职位描述与我们核实过的来源检查结果。除了已存储的信号之外,我们不做任何推测。

职位描述

机器翻译

SLSQ227R703

首席 GTM 赋能与规模化架构师,产品赋能

你将产生的影响

Databricks 在其产品组合中交付定义品类的产品——从数据仓库和实时分析,到数据工程、AI 和 Agents、商业智能和 Genie,以及运营数据。这是一个创始性的赋能岗位。你不会继承一套现成的打法——你将亲手书写它。你将负责端到端的赋能战略,将一个 Databricks 产品领域从早期采用推进到让现场每一位解决方案架构师都能自信地在竞争场景中甄别、定位、演示和捍卫它。你将成为产品团队与全球现场 SA 和合作伙伴技术销售之间的连接组织——将产品能力转化为客户成果,并在产品论坛中代表现场就绪度的声音,指出故事不清晰之处、SA 在定位上受挫之处,以及演示界面在触达现场之前需要收紧之处。

岗位职责

• 为你的 Databricks 产品领域负责面向现场工程和合作伙伴技术销售的全球 GTM 与赋能战略——从基础知识到高级竞争定位

• 利用 AI 大规模构建并交付赋能内容:使用 vibe coding 和 AI 内容流水线生成技术深度解析初稿、竞争话术、动手实验室和演示环境——然后进行审核以确保准确性和现场影响力

• 通过设计可规模化、支持 fork、快速定制和深度技术概念验证交付的演示环境和 POC 仓库,推动“构建者优先”的 SA 文化。

• 直接与产品和工程领导层合作,紧跟路线图,并在 GA 之前将即将推出的功能转化为现场就绪资产

• 建立紧密的产品反馈闭环——系统性地收集现场摩擦、丢单和 SA 异议,并将其连同可执行的建议反馈给产品团队。你有地位告诉 PM 哪些行不通,也有数据作为支撑

• 设计竞争叙事架构,并构建“为什么选择 Databricks”的故事,让 SA 在与客户高管同处一室时充满信心。

• 创建可规模化、多形式的赋能内容:深度解析、解决方案、AI 角色扮演、动手实验室和自定进度学习路径——始终偏向 SA 可以立即用于客户对话的资产

• 构建让现场更聪明的 AI 驱动工具:用于即时解答的 agents、用于话术练习的 AI 角色扮演、基于实时市场信号的自动化竞争简报

• 定义并跟踪衡量现场就绪度的 KPI,以及 SA 是否真的在你的产品领域赢得更多交易

• 自己也要保持实践者身份:将约 10-15% 的时间投入到面向客户的时刻——客户高管简报、精选竞争性 POC,因为当你在客户高管面前捍卫过立场,而不只是把它写下来时,你所构建的内容会更犀利

• 退后一步,进行战略性思考,并创新你的方法,以跟上快节奏的环境。

我们寻找什么

• 8 年以上解决方案架构、技术售前、开发者关系、技术产品营销或技术赋能经验,并具备数据与 AI 平台、分布式系统或云数据基础设施方面的直接经验

• 你曾在现场担任过 SA:你知道运行 POC、实时处理异议,以及针对竞争对手捍卫技术立场是什么感觉。正是这种亲身经历让你的赋能内容可信

• 对现代数据与 AI 平台有深入的动手知识,并在一个或多个 Databricks 产品领域(数据仓库、数据工程、AI/ML、BI 或运营数据库)具备深度

• 构建者心态:你默认构建工具、演示和自动化,而不是幻灯片。你把 AI 工具当作日常的力量倍增器,而不是新奇玩意

• 已证明有能力从零构建赋能项目(0 到 1),而不仅仅是在现有内容上迭代。你把空白页面视为机会,而不是问题

• 强大的产品直觉:你能查看功能路线图,并立即看出它如何映射到客户用例和竞争差异化

• 有作为同级伙伴直接与产品和工程团队合作的经验,而不仅仅是他们内容的消费者

• 有底气告诉产品团队“现场卖不了这个,因为 X”——并以数据和现场证据为支撑

• 规模化思维:你构建的一切都需要适用于全球现场团队,而不是 20 人的工作坊。你在考虑现场交付之前,先考虑杠杆和自动化

• 卓越的沟通能力——你能让复杂的技术概念为广泛的技术受众所理解

• 熟悉数据与 AI 生态系统:Lakehouse 架构、Delta Lake、向量数据库、AI/ML 服务模式

加分项

任职要求

• 兼具售前和售后技术岗位背景——你经历过完整的客户生命周期

• 具备 Databricks 或竞争平台的动手经验

• 有在现代数据与 AI 平台上构建 AI 应用的经验(RAG 模式、agent 架构等)

• 你已经使用 AI 进行规模化构建——自动化内容创作、构建内部工具,或以前所未有的速度交付演示

福利待遇

在 Databricks,我们致力于提供全面的福利和津贴,以满足所有员工的需求。如需了解你所在地区所提供福利的具体详情,请点击此处。

我们对多元与包容的承诺

在 Databricks,我们致力于培育多元包容的文化,让每个人都能脱颖而出。我们非常重视确保我们的招聘实践具有包容性,并符合平等就业机会标准。申请 Databricks 职位的人士不会因年龄、肤色、残疾、族裔、家庭或婚姻状况、性别认同或表达、语言、国籍、身体和心理能力、政治派别、种族、宗教、性取向、社会经济状况、退伍军人身份及其他受保护特征而受到区别对待。

合规

如果履行工作职责需要接触出口管制技术或源代码,雇主可自行决定是否为此类职位申请美国政府许可证,且雇主可能仅基于此原因拒绝继续推进申请人。

薪资

Databricks 致力于公平公正的薪酬实践。该职位的薪资范围列于下方,代表非佣金制职位的预期基本工资范围,或佣金制职位的目标收入。实际薪酬方案取决于每位候选人独有的多个因素,包括但不限于与工作相关的技能、经验深度、相关认证和培训,以及具体工作地点。基于上述因素,Databricks 预计将使用该范围的完整宽度。该职位的总薪酬方案还可能包括年度绩效奖金、股权以及上述福利的资格。如需了解你所在地区属于哪个薪资范围,请访问我们的页面此处。

Zone 1 薪资范围 $217,800 — $299,400 USD

Zone 2 薪资范围 $196,000 — $269,500 USD

Zone 3 薪资范围 $185,100 — $254,550 USD

Zone 4 薪资范围 $174,200 — $239,600 USD

关于 Databricks

Databricks 是数据与 AI 公司。全球超过 20,000 家组织——包括 adidas、AT&T、Bayer、Block、Mastercard、Rivian、Unilever,以及 70% 的 Fortune 500——依赖 Databricks Data + AI Platform 来构建和扩展数据与 AI 应用、分析和 agents。Databricks 总部位于旧金山,在全球拥有 30 多个办公室,提供统一平台,包括 Genie、Lakebase、Agent Bricks、Lakeflow、Lakehouse 和 Unity Catalog。如需了解更多信息,请在 LinkedIn、X、YouTube 和 Instagram 上关注 Databricks。

以上内容由机器翻译自动生成,可能存在错误;投递前请以雇主原文为准。

查看雇主原文

职位描述

SLSQ227R703

Lead GTM Enablement & Scale Architect, Product Enablement

The Impact You Will Have

Databricks ships category-defining products across its portfolio - from Data Warehousing and Real-Time Analytics, to Data Engineering, AI and Agents, Business Intelligence and Genie, and Operational Data. This is a founding enablement role. You won't be inheriting a playbook - you'll be writing it. You will own the end-to-end enablement strategy that takes a Databricks product area from early adoption to something every Solutions Architect in the field can confidently qualify, position, demo, and defend in competitive situations. You will be the connective tissue between the Product team and a global field of SAs and Partner Technical Sales - translating product capabilities into customer outcomes, and representing the field-readiness voice in Product forums where the story is unclear, where SAs stumble on positioning, where the demo surface needs to tighten before it reaches the field.

岗位职责

• Own the global GTM and enablement strategy for your Databricks product area for Field Engineering and Partner Technical Sales - from foundational knowledge through advanced competitive positioning

• Build and ship enablement at scale using AI: use vibe coding, and AI content pipelines to generate first-draft technical deep dives, competitive talk tracks, hands-on labs, and demo environments - then curate for accuracy and field impact

• Drive a 'builder-first' SA culture by architecting scalable demo environments and POC repositories designed for forking, rapid customization, and deep technical proof-of-concept delivery.

• Partner directly with Product and Engineering leadership to stay ahead of the roadmap and translate upcoming features into field-ready assets before GA

• Establish a tight product feedback loop - systematically capture field friction, lost deals, and SA objections and channel them back to Product with actionable recommendations. You have the standing to tell PMs what's not working and the data to back it up

• Design the competitive narrative architecture and build the "why Databricks" story that gives an SA confidence walking into a room with a customer executive.

• Create scalable, multi-format enablement: Deep dives, solutions, AI role-plays, hands-on labs, and self-paced learning paths - always with a bias toward assets SAs can use in a customer conversation immediately

• Build AI-powered tools that make the field smarter: agents for instant answers, AI role-plays for pitch practice, automated competitive briefs from real-time market signals

• Define and track KPIs that measure field readiness, and whether SAs are actually winning more deals in your product area

• Stay a practitioner yourself: spend ~10-15% of your time in customer-facing moments - customer executive briefings, select competitive POCs, because what you build is sharper when you've defended the position in front of a customer executive, not just written it down

• Take a step back, think strategically and innovate your approaches to keep up with the fast paced environment.

What We Look For

• 8+ years in solutions architecture, technical pre-sales, developer relations, technical product marketing, or technical enablement, with direct experience in data and AI platforms, distributed systems, or cloud data infrastructure

• You've been the SA in the room: you know what it feels like to run a POC, handle objections live, and defend a technical position against a competitor. That lived experience is what makes your enablement credible

• Deep hands-on knowledge of modern data and AI platforms, and depth in one or more Databricks product domains (Data Warehousing, Data Engineering, AI/ML, BI, or operational databases)

• Builder mentality: you default to building tools, demos, and automations, not decks. You use AI tools as a daily force multiplier, not a novelty

• Demonstrated ability to build enablement programs from scratch (0-to-1), not just iterate on existing content. You see a blank page as an opportunity, not a problem

• Strong product instinct: you can look at a feature roadmap and immediately see how it maps to customer use cases and competitive differentiation

• Experience working directly with Product and Engineering teams as a peer, not just a consumer of their content

• The backbone to tell Product "the field can't sell this because X" - backed by data and field evidence

• Scaling mindset: everything you build needs to work for a global field team, not a 20-person workshop. You think about leverage and automation before you think about live delivery

• Exceptional communication skills - you can make complex technical concepts accessible to a broad technical audience

• Familiarity with the data and AI ecosystem: Lakehouse architecture, Delta Lake, vector databases, AI/ML serving patterns

Nice to Have

任职要求

• Background in both pre-sales and post-sales technical roles - you've lived the full customer lifecycle

• Hands-on experience with Databricks or competitive platforms

• Experience building AI applications on modern data and AI platforms (RAG patterns, agent architectures, etc.)

• You've already used AI to build at scale - automating content creation, building internal tools, or shipping demos faster than anyone thought possible

福利待遇

At Databricks, we strive to provide comprehensive benefits and perks that meet the needs of all of our employees. For specific details on the benefits offered in your region click here .

Our Commitment to Diversity and Inclusion

At Databricks, we are committed to fostering a diverse and inclusive culture where everyone can excel. We take great care to ensure that our hiring practices are inclusive and meet equal employment opportunity standards. Individuals looking for employment at Databricks are considered without regard to age, color, disability, ethnicity, family or marital status, gender identity or expression, language, national origin, physical and mental ability, political affiliation, race, religion, sexual orientation, socio-economic status, veteran status, and other protected characteristics.

Compliance

If access to export-controlled technology or source code is required for performance of job duties, it is within Employer's discretion whether to apply for a U.S. government license for such positions, and Employer may decline to proceed with an applicant on this basis alone.

薪资

Databricks is committed to fair and equitable compensation practices. The pay range(s) for this role is listed below and represents the expected base salary range for non-commissionable roles or on-target earnings for commissionable roles. Actual compensation packages are based on several factors that are unique to each candidate, including but not limited to job-related skills, depth of experience, relevant certifications and training, and specific work location. Based on the factors above, Databricks anticipated utilizing the full width of the range. The total compensation package for this position may also include eligibility for annual performance bonus, equity, and the benefits listed above. For more information regarding which range your location is in visit our page here .

Zone 1 Pay Range $217,800 — $299,400 USD

Zone 2 Pay Range $196,000 — $269,500 USD

Zone 3 Pay Range $185,100 — $254,550 USD

Zone 4 Pay Range $174,200 — $239,600 USD

About Databricks

Databricks is the Data and AI company. More than 20,000 organizations worldwide — including adidas, AT&T, Bayer, Block, Mastercard, Rivian, Unilever, and 70% of the Fortune 500 — rely on the Databricks Data + AI Platform to build and scale data and AI apps, analytics and agents. Headquartered in San Francisco with 30+ offices around the globe, Databricks offers a unified platform that includes Genie, Lakebase, Agent Bricks, Lakeflow, Lakehouse, and Unity Catalog. To learn more, follow Databricks on LinkedIn , X , YouTube , and Instagram .

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