Jobs Companies Synechron Tech Chapter Lead – Python, AWS, LLM Engineering & Microservices

Sobre esta vaga de Tech Chapter Lead – Python, AWS, LLM Engineering & Microservices na Synechron

Synechron · Presencial · Bengaluru - Thanissandra (BCIT)

Job Summary

Synechron is seeking a Tech / Chapter Lead with 12 to 15 years of experience to provide hands-on engineering leadership across the Process Intelligence Engine (PIE) squads. The role is accountable for technical quality, architecture alignment, scale readiness, engineering standards, and delivery outcomes. The successful candidate will actively design, build, test, troubleshoot, review, and ship software. The role combines technical leadership with direct engineering contribution across Python, AWS cloud-native services, microservices, LLM integration, event-driven processing, and modern front-end technologies.

For the Chapter Lead role, management experience is required. The position will contribute to maintainable, secure, scalable, and production-ready solutions while guiding engineers across squads.


Software Requirements


Required


  • Python: Strong hands-on engineering experience in production software development.
  • FastAPI: Experience building and maintaining Python-based services.
  • REST APIs: Experience designing, developing, integrating, testing, and supporting RESTful services.
  • React and TypeScript: Experience developing or integrating front-end applications.
  • AWS cloud-native services:ECSS3DynamoDBSQSSecrets ManagerIAMApplication Load Balancer (ALB)
  • Enterprise LLM integration: Experience integrating enterprise LLM capabilities through AWS Bedrock / AI Gateway.
  • LangGraph: Practical experience with LLM-powered workflow orchestration.
  • LLM engineering: Experience with tool and function calling, structured outputs, evaluation, and observability.
  • Redis: Experience supporting caching, low-latency access, or distributed application workflows.
  • Asynchronous and event-driven processing: Experience designing and implementing non-blocking, message-based, or event-driven solutions.
  • Docker: Experience containerizing and running applications.
  • CI/CD: Experience supporting automated build, test, security, and deployment workflows.
  • JFrog: Experience with artifact or package repository workflows.
  • SonarQube: Experience with code-quality analysis and quality gates.
  • Microservices: Experience designing and delivering distributed services.
  • Cloud-native integration patterns: Experience connecting secure enterprise services and platforms.

Preferred


  • Experience with semantic and vector search.
  • Experience with speech and transcript processing.
  • Experience applying LLMs to production software and business workflows.
  • Experience with LLM evaluation frameworks, monitoring, tracing, and production observability.
  • Experience developing reusable engineering patterns across multiple squads.
  • Experience managing engineers in a Chapter Lead or comparable people-management role.
  • Experience working with enterprise process intelligence, automation, or workflow platforms.


Overall Responsibilities


  • Provide hands-on technical leadership across the PIE squads.
  • Design, build, test, troubleshoot, and ship production-ready software.
  • Establish engineering patterns, coding standards, integration practices, and quality expectations.
  • Guide technical decisions and ensure alignment with the agreed architecture.
  • Review implementations and pull requests for correctness, security, scalability, maintainability, and performance.
  • Design and develop Python-based microservices using FastAPI and REST APIs.
  • Build cloud-native solutions using AWS services, including ECS, S3, DynamoDB, SQS, Secrets Manager, IAM, and ALB.
  • Develop React and TypeScript components and support integration with backend services.
  • Integrate enterprise LLM capabilities through AWS Bedrock / AI Gateway.
  • Develop LLM-powered workflows using LangGraph, tool and function calling, structured outputs, and workflow orchestration.
  • Implement semantic and vector search, LLM evaluation, observability, speech processing, and transcript processing where required.
  • Design asynchronous and event-driven processing using appropriate messaging and integration patterns.
  • Troubleshoot complex technical issues across applications, integrations, infrastructure, data flows, and AI-enabled services.
  • Support CI/CD, Docker-based delivery, JFrog artifact management, and SonarQube quality controls.
  • Mentor engineers, demonstrate engineering patterns, and provide technical guidance across squads.
  • For the Chapter Lead role, manage engineering resources, support development planning, and contribute to team capability growth.
  • Improve delivery quality, service reliability, scalability, maintainability, and operational readiness.
  • Promote efficient use of cloud compute, storage, networking, and data resources to support sustainable engineering practices.


Technical Skills (By Category)


Programming Languages


Essential


  • Python with strong hands-on production engineering experience.
  • TypeScript for front-end development or service integration.
  • JavaScript knowledge relevant to React-based applications.

Preferred


  • Additional programming or scripting experience for automation, testing, deployment, or data processing.
  • Experience implementing reusable libraries, service components, or engineering accelerators.

Databases/Data Management


Essential


  • DynamoDB for cloud-based application data storage and retrieval.
  • Redis for caching and low-latency data access.
  • Experience designing data access patterns for microservices and distributed systems.
  • Understanding of data structures, data flow, consistency, and scalability considerations.
  • Experience supporting semantic and vector search where applicable.

Preferred


  • Experience with vector databases or vector-search platforms.
  • Experience with speech, transcript, and unstructured data processing.
  • Experience designing data solutions for high-volume or asynchronous workloads.

Cloud Technologies


Essential


  • AWS cloud-native engineering experience.
  • ECS for containerized application deployment.
  • S3 for object storage and data handling.
  • DynamoDB for cloud-based application data.
  • SQS for asynchronous messaging.
  • Secrets Manager for secure secrets management.
  • IAM for identity and access control.
  • Application Load Balancer (ALB) for application traffic routing.
  • Understanding of cloud-native integration patterns and scalable service design.

Preferred


  • Experience optimizing AWS workloads for availability, performance, cost, and resource efficiency.
  • Experience with cloud monitoring, logging, tracing, and operational support.
  • Experience supporting cloud migration or modernization initiatives.

Frameworks and Libraries


Essential


  • FastAPI.
  • React.
  • TypeScript.
  • LangGraph.
  • REST API frameworks and libraries.
  • Libraries or services supporting enterprise LLM integration, structured outputs, tool and function calling, and workflow orchestration.

Preferred


  • Frameworks supporting semantic search, vector search, speech processing, transcript processing, and LLM evaluation.
  • Experience developing reusable frameworks or shared components across engineering squads.

Development Tools and Methodologies


Essential


  • Microservices architecture.
  • Asynchronous and event-driven processing.
  • Docker.
  • CI/CD.
  • JFrog.
  • SonarQube.
  • Pull-request reviews and source-control workflows.
  • Production troubleshooting and operational support.
  • Hands-on software design, development, testing, and release practices.
  • Engineering patterns and standards that support quality, scalability, and maintainability.

Preferred


  • Experience implementing automated testing, deployment validation, security checks, and quality gates.
  • Experience establishing engineering standards across multiple teams.
  • Experience with LLM evaluation and observability practices.
  • Experience using structured development methods to support continuous delivery.

Security Protocols


Essential


  • AWS IAM and secure access-control practices.
  • AWS Secrets Manager and secure handling of credentials, keys, and sensitive configuration.
  • Secure enterprise service integration.
  • Secure REST API design and implementation.
  • Application security considerations across development, deployment, and operations.
  • Ability to identify and address security risks in microservices, cloud infrastructure, APIs, data flows, and LLM integrations.

Preferred


  • Experience implementing security controls for enterprise AI services and LLM-powered workflows.
  • Experience with security testing and remediation integrated into CI/CD pipelines.
  • Familiarity with secure handling of sensitive speech, transcript, or business-process data.


Experience Requirements

  • 12 to 15 years of software engineering experience, including substantial hands-on development.
  • Strong Python and AWS cloud-native engineering capability.
  • Experience designing, developing, testing, troubleshooting, and shipping production software.
  • Experience with Python, FastAPI, REST APIs, React, TypeScript, microservices, AWS services, Docker, CI/CD, and secure enterprise integration.
  • Practical experience integrating LLMs into production software, including LLM-powered workflows, tool and function calling, structured outputs, evaluation, and observability.
  • Required for Chapter Lead Management experience, including mentoring, team support, engineering planning, or people-management responsibilities.
  • Preferred Experience with semantic and vector search, speech and transcript processing, event-driven systems, and enterprise process intelligence.
  • Preferred Experience leading technical delivery across multiple engineering squads.
  • Candidates may also qualify through an equivalent combination of relevant professional experience, technical training, demonstrated engineering leadership, and delivery of comparable cloud-native and AI-enabled platforms.


Day-to-Day Activities


  • Work directly with the codebase to design, prototype, implement, test, troubleshoot, and ship Python, FastAPI, React, TypeScript, and AWS-based solutions.
  • Participate in architecture discussions, squad planning, technical reviews, pull-request reviews, delivery meetings, and collaboration with engineering and business stakeholders.
  • Deliver microservices, REST APIs, LLM-powered workflows, event-driven integrations, infrastructure changes, automated tests, quality improvements, and technical documentation.
  • Make technical decisions within agreed architecture and standards, guide engineers across squads, resolve delivery risks, and support scale, security, maintainability, and production readiness.


Qualifications


  • A bachelor’s or master’s degree in Computer Science, Information Technology, Engineering, or a related field is preferred; equivalent relevant experience and demonstrated technical capability may be considered.
  • 12 to 15 years of software engineering experience, with strong hands-on Python and AWS cloud-native development experience.
  • Management experience is required for the Chapter Lead role, including team guidance, mentoring, resource planning, or people-management responsibilities.
  • Certifications in AWS, cloud architecture, software development, security, or AI engineering are preferred but are not specified as mandatory.
  • Maintain continuous professional development in Python, AWS, microservices, DevOps, secure integration, LLM engineering, evaluation, observability, and emerging AI technologies.


Professional Competencies


  • Apply structured critical thinking and problem-solving to address complex software, cloud, integration, scalability, security, and AI-engineering challenges.
  • Provide technical leadership, mentorship, and practical guidance while contributing directly to engineering delivery.
  • Communicate technical decisions, risks, design options, progress, and trade-offs clearly with engineers, stakeholders, and cross-functional teams.
  • Adapt to evolving technologies, requirements, AI capabilities, delivery priorities, and operational needs while maintaining quality.
  • Identify opportunities to improve engineering patterns, automation, LLM workflows, system performance, maintainability, and sustainable cloud-resource usage.
  • Manage priorities, dependencies, technical decisions, squad commitments, and delivery timelines while maintaining accountability for quality and production readiness.


S​YNECHRON’S DIVERSITY & INCLUSION STATEMENT
 

Diversity & Inclusion are fundamental to our culture, and Synechron is proud to be an equal opportunity workplace and is an affirmative action employer. Our Diversity, Equity, and Inclusion (DEI) initiative ‘Same Difference’ is committed to fostering an inclusive culture – promoting equality, diversity and an environment that is respectful to all. We strongly believe that a diverse workforce helps build stronger, successful businesses as a global company. We encourage applicants from across diverse backgrounds, race, ethnicities, religion, age, marital status, gender, sexual orientations, or disabilities to apply. We empower our global workforce by offering flexible workplace arrangements, mentoring, internal mobility, learning and development programs, and more.


All employment decisions at Synechron are based on business needs, job requirements and individual qualifications, without regard to the applicant’s gender, gender identity, sexual orientation, race, ethnicity, disabled or veteran status, or any other characteristic protected by law.

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At Synechron, we believe in the power of digital to transform businesses for the better. Our global consulting firm combines creativity and innovative technology to deliver industry-leading digital solutions. Synechron’s progressive technologies and optimization strategies span end-to-end Artificial Intelligence, Consulting, Digital, Cloud & DevOps, Data, and Software Engineering , servicing an array of noteworthy financial services and technology firms. Through research and development initiatives in our FinLabs we develop solutions for modernization, from Artificial Intelligence and Blockchain to Data Science models, Digital Underwriting, mobile-first applications and more. Over the last 2

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