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AI/ML Engineer

Summary shown in Indonesian — English version coming soon.

Full Description

Who are we? Equinix is the world's digital infrastructure company®, shortening the path to connectivity to enable the innovations that enrich our work, life and planet. A place where bold ideas are welcomed, human connection is valued, and everyone has the opportunity to shape their future. Help us challenge assumptions, uncover bias, and remove barriers-because progress starts with fresh ideas. You'll find belonging, purpose, and a team that welcomes you-because when you feel valued, you're empowered to do your best work. Job Summary The Software Engineer for AI/ML is a junior to mid-level engineering role within the Developer Experience Program (EDP), focused on building and integrating AI and machine learning capabilities that directly improve how developers work at Equinix. You will work on practical, high-impact AI features - intelligent work prioritization, agentic workflow components, LLM-powered developer assistants, and feedback loops that make the platform smarter over time. This is not a research role. You will be shipping AI features into production developer toolingIf you are early in your career but passionate about building real AI systems - not just running notebooks - and want to see your work directly reduce toil, cut PR cycle times, and help developers spend more time on meaningful work, this role is for you. You will work closely with the EDP engineering lead, product owner, and the broader platform engineering team. Responsibilities Build and integrate LLM-powered features into developer tooling: intelligent work recommendations, CI failure explanations, PR assist, and "what should I work on today?" surfaces in the developer portal Implement the v1 AI-assist layer on top of the contextual prioritization engine - taking a rules-based ranking system and extending it with signal-driven ML recommendations based on service ownership, operational risk, and developer context Build and maintain prompt engineering pipelines for developer-facing AI features: writing, versioning, evaluating, and iterating on prompts that power agentic assistants and explanation services Assist in the development of agent components within the Agentic Execution Framework - building discrete agent steps, tool integrations, and output parsers that plug into the broader orchestration layer Implement feedback loop collection for AI-powered features: capturing developer ratings, implicit signals, and usage patterns that feed model and prompt improvement over time Build evaluation pipelines to test AI feature quality - relevance, accuracy, and helpfulness - before and after changes to prompts, models, or ranking logic Integrate with LLM APIs such as Anthropic Claude, Amazon Bedrock, or OpenAI - handling authentication, rate limiting, error handling, and response parsing in production-grade code Work with the metrics engineer to instrument AI features with the telemetry needed to measure adoption, accuracy, and developer satisfaction Write clean, well-tested code and participate in code reviews, learning from senior engineers on the team Stay current on fast-moving developments in LLM tooling, agentic frameworks, and developer AI tooling and bring relevant ideas back to the team Technical Requirements Proficiency in Python - the primary language for AI/ML feature development, prompt pipelines, evaluation frameworks, and agent component implementation Hands-on experience working with LLM APIs: Anthropic Claude, OpenAI, Amazon Bedrock, or equivalents - comfortable with prompt construction, API integration, response handling, and basic error management Familiarity with at least one agentic or LLM orchestration framework: LangChain, LangGraph, LlamaIndex, AutoGen, or equivalents - able to build simple agent pipelines and tool integrations Basic understanding of ML concepts relevant to ranking and recommendation: feature engineering, scoring functions, evaluation metrics such as precision, recall, and NDCG - a formal ML background is not required

Why This Role?

Bekerja pada fitur AI yang langsung mempengaruhi pengalaman developer dan membantu mengurangi toil.

Required Skills

pythonmachine learningllmprompt engineeringsoftware engineering

Indonesia Context

Working Hours Overlap:
Flexible — work your own hours

Keywords

ai engineermachine learningdeveloper toolsllmagentic workflowsfull-timeremote
View Original Description from The Muse

Original description from The Muse

Who are we? Equinix is the world's digital infrastructure company®, shortening the path to connectivity to enable the innovations that enrich our work, life and planet. A place where bold ideas are welcomed, human connection is valued, and everyone has the opportunity to shape their future. Help us challenge assumptions, uncover bias, and remove barriers-because progress starts with fresh ideas. You'll find belonging, purpose, and a team that welcomes you-because when you feel valued, you're empowered to do your best work. Job Summary The Software Engineer for AI/ML is a junior to mid-level engineering role within the Developer Experience Program (EDP), focused on building and integrating AI and machine learning capabilities that directly improve how developers work at Equinix. You will work on practical, high-impact AI features - intelligent work prioritization, agentic workflow components, LLM-powered developer assistants, and feedback loops that make the platform smarter over time. This is not a research role. You will be shipping AI features into production developer toolingIf you are early in your career but passionate about building real AI systems - not just running notebooks - and want to see your work directly reduce toil, cut PR cycle times, and help developers spend more time on meaningful work, this role is for you. You will work closely with the EDP engineering lead, product owner, and the broader platform engineering team. Responsibilities Build and integrate LLM-powered features into developer tooling: intelligent work recommendations, CI failure explanations, PR assist, and "what should I work on today?" surfaces in the developer portal Implement the v1 AI-assist layer on top of the contextual prioritization engine - taking a rules-based ranking system and extending it with signal-driven ML recommendations based on service ownership, operational risk, and developer context Build and maintain prompt engineering pipelines for developer-facing AI features: writing, versioning, evaluating, and iterating on prompts that power agentic assistants and explanation services Assist in the development of agent components within the Agentic Execution Framework - building discrete agent steps, tool integrations, and output parsers that plug into the broader orchestration layer Implement feedback loop collection for AI-powered features: capturing developer ratings, implicit signals, and usage patterns that feed model and prompt improvement over time Build evaluation pipelines to test AI feature quality - relevance, accuracy, and helpfulness - before and after changes to prompts, models, or ranking logic Integrate with LLM APIs such as Anthropic Claude, Amazon Bedrock, or OpenAI - handling authentication, rate limiting, error handling, and response parsing in production-grade code Work with the metrics engineer to instrument AI features with the telemetry needed to measure adoption, accuracy, and developer satisfaction Write clean, well-tested code and participate in code reviews, learning from senior engineers on the team Stay current on fast-moving developments in LLM tooling, agentic frameworks, and developer AI tooling and bring relevant ideas back to the team Technical Requirements Proficiency in Python - the primary language for AI/ML feature development, prompt pipelines, evaluation frameworks, and agent component implementation Hands-on experience working with LLM APIs: Anthropic Claude, OpenAI, Amazon Bedrock, or equivalents - comfortable with prompt construction, API integration, response handling, and basic error management Familiarity with at least one agentic or LLM orchestration framework: LangChain, LangGraph, LlamaIndex, AutoGen, or equivalents - able to build simple agent pipelines and tool integrations Basic understanding of ML concepts relevant to ranking and recommendation: feature engineering, scoring functions, evaluation metrics such as precision, recall, and NDCG - a formal ML background is not required

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Source
The Muse
Job Type
full time
Location
Worldwide Remote · Remote
Category
Data & Analytics
Seniority
mid
PostedNew
Jun 5, 2026

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