高级云架构师,交付(生成式AI)
Senior Cloud Architect, Delivery (GenAI)
**地点** 我们的**高级云架构师**将是全球Forward Deployment Engineering团队的重要成员。该职位远程办公,位于英国、爱尔兰、爱沙尼亚、瑞典、荷兰和以色列,面向全职员工。该职位也向东欧或葡萄牙的承包商开放。
**关于DoiT**
DoiT是一家全球科技公司,与以云驱动的组织合作,利用公有云推动业务增长和创新。我们结合数据、技术和人类专业知识,确保客户在规划到生产的过程中保持良好的架构和可扩展性。
通过提供**DoiT Cloud Intelligence**,唯一一个将先进技术与人类智能相结合的解决方案,我们帮助客户解决复杂的多云问题并提高效率。凭借数十年的多云经验,我们在Kubernetes、GenAI、CloudOps等领域有专长。作为AWS、Google Cloud和Microsoft Azure的获奖战略合作伙伴,我们与全球4000多家客户合作。
### **机会**
作为**高级云架构师**,您将加入我们的全球Forward Deployed Engineering团队,与EMEA地区及全球快速增长的公司合作。该职位隶属于**FDE Delivery**,专注于我们的客户基础、产品采用率和客户健康状况。
您将:
- 领导在AWS上设计和实现**生产级机器学习和生成式AI解决方案**(具备多云环境意识)。
- 作为客户运行大规模AI/ML工作负载的**实战专家和值得信赖的顾问**,从初步发现到部署和优化全程提供支持。
- 将复杂业务问题转化为**安全、可靠、成本高效且可观测**的云架构。
- 通过将一次性解决方案转化为可重复使用的模式和“碎石路”,帮助DoiT内部及客户提升AI/ML的使用方式,并影响产品路线图。
- 您将更多地关注**客户基础健康、产品采用、主动参与和客户团队协作**。
### **职责**
#### 核心 – 深度云专业知识
成为客户信赖的云工程师,在成本、可靠性、安全性和性能方面进行高影响力的优化工作。
设计并协助实施以下解决方案:
- 提高**成本效率**(资源调整、预留实例/承诺、存储优化等)
- 提高**可靠性和弹性**(
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**Location** Our **Senior Cloud Architect** will be an integral part of our global Forward Deployment Engineering team. This role is based remotely in the UK, Ireland, Estonia, Sweden, the Netherlands, and Israel and is available to Full-Time Employees. The job is also open to contractors in Eastern Europe or Portugal.
**About DoiT**
DoiT is a global technology company that works with cloud-driven organizations to leverage public cloud to drive business growth and innovation. We combine data, technology, and human expertise to ensure our customers operate in a well-architected and scalable state—from planning to production.
Delivering **DoiT Cloud Intelligence**, the only solution that integrates advanced technology with human intelligence, we help our customers solve complex multicloud problems and drive efficiency. With decades of multicloud experience, we have specializations in Kubernetes, GenAI, CloudOps, and more. An award-winning strategic partner of AWS, Google Cloud, and Microsoft Azure, we work alongside more than 4,000 customers worldwide.
### **The Opportunity**
As a **Senior Cloud Architect,** you will be part of our global Forward Deployed Engineering organization, working with rapidly growing companies in EMEA and around the world. This role sits within **FDE Delivery** and focuses on our install base, product adoption and customer health.
You will:
- Lead the design and implementation of **production-grade ML and Generative AI solutions on AWS** (with awareness of multi-cloud environments).
- Act as a **hands-on expert and trusted advisor** for customers running AI/ML workloads at scale, from initial discovery through deployment and optimization.
- Translate complex business problems into cloud architectures that are **secure, reliable, cost-efficient, and observable**.
- Help evolve how DoiT uses AI/ML internally and with customers by turning one-off solutions into reusable patterns and “gravel roads” that influence the product roadmap.
- You will focus more on **install base health, product adoption, proactive engagements, and account-team work**.
### **Responsibilities**
#### Core – Deep Cloud Expertise
Be the trusted cloud engineer customers lean on for high‑impact technical optimization work across cost, reliability, security, and performance.
Design and help implement solutions that:
- improve **cost efficiency** (rightsizing, reservations/commitments, storage optimization, etc.)
- increase **reliability and resilience** (HA/DR architectures, SLO/SLA‑aware designs)
- strengthen **security posture** (IAM, network segmentation, data protection, least‑privilege)
- reduce **operational toil** (automation, self‑service, guardrails, policy enforcement)
- Plan and deliver structured engagements such as **Cloud Optimization Sessions**, cost/efficiency/performance workshops, security posture or reliability reviews, and architecture deep dives / "well‑architected" style assessments.
- Respond to Expert Inquiry / support requests that require deep cloud engineering expertise, ensuring high‑quality, well‑explained resolutions.
- Bring **domain depth** in:
- **ML / GenAI** – deploying and operating ML/GenAI workloads (training and inference), GPU utilization, scaling, and cost control; MLOPS and integrating workloads with monitoring, logging, and FinOps; safe and efficient use of managed AI services.
#### Builder – Product Feedback & Contribution
Turn one‑off field work into reusable assets that improve both customer outcomes and the product itself.
- Convert one‑off customer solutions into **Gravel Roads** - reusable patterns such as playbooks, Terraform modules, CloudFlow templates, cloud diagrams, Composer Recipes -> DCI Insights, and internal /external documentation.
- Provide structured feedback to the DoiT Product and Engineering teams on:
- product gaps and friction points discovered in real‑world usage
- new opportunities for automation and workload lenses within DCI
- telemetry and tracking that would make future FDE work more efficient
- Contribute directly to DCI where appropriate - from feature requests and feedback, to contributing code, to owning specific DCI features end‑to‑end.
- Build agent skills, scripts, and internal tooling that codify your expertise and scale it across the team.
- Contribute to internal enablement: share learnings via documentation, demos, office hours, or training sessions for other FDEs and Customer Success team members.
#### Account Team – Embedded Execution
Operate as an embedded technical partner inside the account team.
- Work in the **account team model** alongside Customer Success Managers (CSMs), Account Managers (AMs) to deliver impactful outcomes.
- Own the **technical depth** lane: technical deployment & integration, automation & platform adoption, signal‑based proactive engagement, and most importantly, repeatable Cloud Optimization solutions.
- Partner with customers' engineers, architects, and FinOps teams to translate vague pain points into concrete technical optimization plans — and help them ship changes that stick and create continuous value.
- Co‑deliver complex or multi‑domain engagements with peer FDEs (for example, infra + data + ML/GenAI), reviewing and refining designs, and engagement plans together.
- Communicate complex technical topics clearly to both engineers and non‑technical stakeholders (FinOps, finance, leadership), and maintain clear documentation of architectures, decisions, and implemented changes so customers and fellow FDEs can sustain and build on your work.
- Contribute to a culture of continuous improvement within the global FDE community through design reviews, internal forums, enablement sessions, and experimentation.
#### Product Expert – DoiT Cloud Intelligence™ (DCI)
Become an expert in DCI and use it hands‑on to drive concrete customer outcomes.
- Master DoiT Cloud Intelligence™ products and services — including Cloud Analytics, DCI Insights, Cloud Composer, CloudFlow, DataHub, PerfectScale, and other Enterprise Platforms.
- Use DCI hands‑on to:
- Build and operationalize **Cloud Analytics** and **Allocations** to create dashboards and reports for customer engineering, finance, and leadership.
- Use **DCI Insights** to identify and prioritize cost, risk, and reliability opportunities, and shepherd them through to closure.
- Implement **Cloud Composer** queries, build recipes that result in hand-crafted insights across all customers' engineering use cases.
- Build **CloudFlow** automations (e.g., anomaly routing, scheduled actions, guardrails, policy enforcement).
- Use Built in Integrations such and utilize **DataHub** and other workload‑intelligence features to optimize key business and workload data inside DCI.
- Help customers **embed DCI** into existing observability, CI/CD, and governance processes so it becomes trusted and indispensable in day‑to‑day cloud operations.
### **Qualifications**
**Experience**
- 4+ years of experience architecting, deploying, and managing **cloud-based AI/ML solutions**, including production workloads.
- Proven track record designing and operating **large, distributed systems on AWS**, selecting appropriate services and patterns to meet business and technical goals.
**AWS & GenAI / ML Expertise**
- Advanced proficiency with **AWS** services relevant to AI/ML and GenAI.
- Hands-on experience with **Amazon Bedrock** for deploying and scaling foundation models and Generative AI workloads.
- Experience fine-tuning and deploying **Large Language Models (LLMs) and multimodal AI** using **Amazon SageMaker (including JumpStart)**.
- Strong **prompt engineering** skills and familiarity with rigorous **model evaluation** (quality, safety, performance).
- Understanding of **agentic capabilities** and patterns for AI agents that autonomously perform tasks and integrate with existing systems.
- Experience with **Amazon Q Business** and **Amazon Q Developer** (or similar tools) to accelerate insight generation and development workflows.
**ML Pipelines, Data & MLOps**
- In-depth knowledge of **Amazon SageMaker** components such as Pipelines, Model Monitor, Data Wrangler, and SageMaker Clarify for bias detection and interpretability.
- Proficiency integrating **TensorFlow, PyTorch**, and other ML frameworks with SageMaker for model development, fine-tuning, and deployment.
- Experience with **distributed training** (multi-GPU or multi-node) and performance optimization for inference.
- Strong data-engineering skills on AWS: **Amazon S3, AWS Glue, Lake Formation, Redshift** for AI/ML data pipelines.
- Experience building **end-to-end AI/ML workflows** using services like **AWS Lambda, Step Functions, API Gateway**, and containerized deployments on **Amazon EKS / AWS Fargate**.
**DevOps, MLOps, Governance & Security**
- Hands-on experience with **CI/CD for AI/ML** using AWS CodePipeline, CodeBuild, SageMaker Pipelines, or similar.
- Proficiency in monitoring and operating AI systems using **Amazon CloudWatch** and SageMaker Model Monitor.
- Strong understanding of **AI governance, security, and compliance** on AWS, including IAM, KMS, and data privacy patterns.
- Familiarity with AI ethics and **bias detection/mitigation** (e.g., using SageMaker Clarify or similar tools).
**Multi-Cloud Awareness & Collaboration**
- Working knowledge of **Google Cloud AI tools** (e.g., Vertex AI, Cloud AutoML, BigQuery ML) sufficient to reason about multi-cloud architectures and integration points.
- Proven ability to **mentor peers**, run enablement sessions, and collaborate across Sales, CS, and Product.
**Soft Skills**
- Excellent communication skills across technical and business audiences; able to simplify complex ideas and influence decisions.
- Natural ownership mentality: you **escalate early, resolve fast, and own the outcome**.
- Demonstrated ability to work effectively in a **remote-first, global** environment.
#### **Bonus Points**
**Education & Certifications**
- BA/BS degree in Computer Science, Mathematics, or a related technical field, or equivalent practical experience.
- Additional **data or AI certifications** (e.g., AWS/GCP data certifications, reputable AI/ML programs such as Stanford, Coursera, Udacity, MIT, eCornell).
**Expanded AI/ML & Dev Experience**
- Experience with modern **RLHF**, advanced fine-tuning techniques, and hybrid AI architectures.
- Familiarity with **Hugging Face** or similar open-source ecosystems integrated with AWS.
- Prior experience as a **ML Engineer, Data Scientist, or AI-focused Architect** in a consulting or SaaS environment.
**Tooling & Process**
- Experience with **JIRA** or similar tools for tracking work across delivery and product-feedback cycles.
- Exposure to Agile practices and frameworks commonly used for SaaS and cloud delivery.
**Are you a Do’er?**
Be your truest self. Work on your terms. Make a difference.
We are home to a global team of incredible talent who work remotely and have the flexibility to have a schedule that balances your work and home life. We embrace and support leveling up your skills professionally and personally.
What does being a Do’er mean? We’re all about being entrepreneurial, pursuing knowledge, and having fun! Click here to learn more about our [core values](https://careers.doit.com/life-at-doit/).
Sounds too good to be true? Check out our [Glassdoor Page](https://www.glassdoor.com/Overview/Working-at-DoiT-International-EI_IE1972488.11,29.htm).
We thought so too, but we’re here and happy we hit that ‘apply’ button.
Full-time employee benefits include:
- Unlimited Vacation
- Flexible Working Options
- Health Insurance
- Parental Leave
- Employee Stock Option Plan
- Home Office Allowance
- Professional Development Stipend
- Peer Recognition Program
**Many Do’ers, One Team**
DoiT unites as _Many Do’ers, One Team_, where diversity is more than a goal—it's our strength. We actively cultivate an inclusive, equitable workplace, recognizing that each unique perspective enhances our innovation. By celebrating differences, we create an environment where every individual feels valued, contributing to our collective success.
#LI-Remote