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Remote Intersystems Cache Developer Jobs in Colorado

Systems Software Engineer - Object Storage

Centennial, CO · Remote

$130K - $170K/yr

  • Medical

  • Dental

  • Vision

  • Life

  • Retirement

Implement and tune distributed caching (read cache / metadata cache) and request coalescing ... remote teams. Required Qualifications * 12+ years of software development experience using C/C ...

AI Engineer

Denver, CO · On-site +1

$100K - $135K/yr

  • Retirement

  • PTO

Remote USA - In Tandem Compensation: $100,000 - $135,000 / year Description At In Tandem, we build ... Optimize aggressively: tensor parallelism, quantization (FP8, AWQ, GPTQ), KV-cache and prefix ...

Revenue visibility across the org You will run sales, marketing, customer support, and engineering ... Fully remote: globally distributed, optimized for deep work and autonomy * Competitive base ...

Revenue visibility across the org You will run sales, marketing, customer support, and engineering ... Fully remote: globally distributed, optimized for deep work and autonomy * Competitive base ...

Remote Intersystems Cache Developer information

What is a remote Intersystems Cache developer?

Remote Intersystems Cache Developers are software professionals who specialize in designing, developing, and maintaining applications using the InterSystems Caché database platform, all while working remotely. They leverage their expertise in Caché's object-oriented and SQL database features to build high-performance, scalable solutions, often in healthcare or financial industries. These developers collaborate with teams using online tools, troubleshoot issues, and ensure the security and efficiency of database-driven applications from remote locations.

How do remote Intersystems Cache developers typically collaborate with team members across different locations?

Remote Intersystems Cache Developers frequently work with distributed teams, using collaboration tools like Slack, Microsoft Teams, or Jira to maintain communication and project tracking. Regular virtual meetings are common for discussing requirements, code reviews, and troubleshooting. Developers often interact closely with database administrators, front-end developers, and project managers to ensure seamless integration and performance optimization. Effective remote collaboration requires strong communication skills, self-motivation, and the ability to document code and processes clearly for team visibility.

What are the key skills and qualifications needed to thrive as a remote Intersystems Cache developer?

To thrive as a Remote Intersystems Cache Developer, you need strong programming skills in ObjectScript, experience with database design, and a solid understanding of healthcare data standards, typically supported by a degree in computer science or a related field. Familiarity with Intersystems Cache/IRIS, HL7 or FHIR integrations, and certifications like Intersystems Certified Developer are highly beneficial. Excellent problem-solving abilities, attention to detail, and effective remote communication skills help developers excel in distributed teams. These skills ensure robust, secure, and efficient healthcare application development and seamless collaboration in a remote work environment.

What job categories do people searching Remote Intersystems Cache Developer jobs in Colorado look for?

The top searched job categories for Remote Intersystems Cache Developer jobs in Colorado are:

What cities in Colorado are hiring for Remote Intersystems Cache Developer jobs?

Cities in Colorado with the most Remote Intersystems Cache Developer job openings:

Senior Engineer, Inference Data Plane

DigitalOcean

Denver, CO • Remote

$139K - $174K/yr

Full-time

Posted 21 days ago


Job description

DigitalOcean is expanding its AI Infrastructure layer to support the next generation of AI-driven applications. We are seeking a Senior Engineer 2 to join our AI Inference Data Plane team. In this role, you will be a key technical leader responsible for designing, developing, and delivering high-scale, resilient data plane services that power our "Inference as a Service" offering. You will work at the intersection of distributed systems and specialized AI hardware to ensure our customers can deploy and scale their models with industry-leading performance and reliability. This is a hands-on role, requiring you to be able to develop high quality software while availing of all the productivity boosts granted by the latest AI coding agents. 

What You'll Do:
  • Technical Leadership: Act as a technical leader on the team, driving the end-to-end design, development, and delivery of critical data plane components hosting large generative AI models.
  • System Design: Architect and refine system design proposals for our high-scale, multi-tenant AI inference cloud ecosystem, ensuring they meet rigorous availability and resiliency standards.
  • Performance Optimization: Implement and optimize distributed inference hosting using techniques like tensor/data parallelism, KV cache optimizations, and smart routing.
  • Collaboration: Work cross-functionally with Product Managers, customer-facing teams, and other engineering teams to align technical roadmaps with customer needs.
  • Distributed Serving at Scale: Build on Kubernetes-native distributed inference frameworks like llm-d (or alternatives such as NVIDIA Dynamo, Ray Serve, KServe) to deliver prefill/decode disaggregation, KV-cache-aware routing, tiered prefix caching, and wide expert parallelism for MoE models.
  • Flow Control & Load Balancing: Solve the distributed-systems problems unique to LLM serving - inference-aware load balancing on queue depth, cache locality, and predicted latency; flow control and fairness across tenants; autoscaling inference pools; and moving gigabytes of KV-cache between prefill and decode instances with negligible overhead.
  • Open Source Contributions: Contribute upstream to llm-d, vLLM, and the inference gateway ecosystem, and represent DigitalOcean in these communities.
  • Mentorship: Coach and mentor junior engineers, fostering a culture of technical excellence and continuous improvement.
  • Operational Excellence: Maintain and operate critical, high-scale services, utilizing observability tools and defining SLOs to ensure superior platform health.
What You'll Bring to DigitalOcean:
  • AI/ML Domain Knowledge: Hands-on experience hosting large language or multimodal models using inference engines like vLLM, SGLang, or TensorRT.
  • Inference Frameworks: Familiarity with distributed inference serving frameworks such as llm-d, NVIDIA Dynamo, or Ray Serve.
  • Inference Engine Depth: Hands-on experience with vLLM or alternatives (SGLang, TensorRT-LLM, TGI, Modular MAX), including internals like continuous batching, paged attention, and prefix caching.
  • Distributed Inference Fluency: Understanding of why cluster-scale serving is hard: KV-cache locality is partitioned across workers, naive round-robin routing destroys cache hit rates and tail latency, and disaggregated prefill/decode requires fast cross-pod KV transfer (e.g., NIXL).
  • Upstream Track Record: Merged contributions to vLLM, llm-d, SGLang, or similar projects strongly preferred.
  • Architecture Proficiency: Knowledge of common LLM architectures and optimization techniques (e.g., continuous batching, quantization).
  • Software Engineering: Expert-level proficiency in GoLang or Python and familiarity with gRPC.
  • Cloud Operations: Proven experience shipping customer-facing software products and running critical services in a high-scale environment similar to DigitalOcean.
  • Open Source Mindset: Experience integrating and building with open-source software.
Compensation Range: 
  • $139,200 - $174,000

*This is a remote role

JR: 2026-7624

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