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Lims Eln Application Support Jobs (NOW HIRING)

LIMS/ELN/MES integration * ERP-MES-LIMS integration * OT/IT integration * Serialization and track ... Manufacturing investigation support * Ensure emerging technologies are evaluated for business value ...

Pharma Project Manager

Chestnut Ridge, NY ยท On-site

$99K - $118K/yr

Experienced with LIMS LabVantage, ELN for Lab Information Systems. Skills & Abilities * Strong ... Application Support and Administration. Application Support Models. * Customer engagement/focus ...

... and supports broader laboratory systems, including LIMS, ELN,SDMS, and instrument integration workflows The role partners with laboratory operations, medical, clinical, and technology teams to ...

Develop deep expertise in STARLIMS application configuration and functionality. * Perform remote ... Prior LIMS, ELN, SDMS or LES experience *Occasional weekend coverage is required on a quarterly ...

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Lims Eln Application Support information

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How much do lims eln application support jobs pay per year?

As of Sep 11, 2026, the average yearly pay for lims eln application support in the United States is $161,189.00, according to ZipRecruiter salary data. Most workers in this role earn between $105,000.00 and $205,000.00 per year, depending on experience, location, and employer.

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Infographic showing various Lims Eln Application Support job openings in the United States as of August 2026, with employment types broken down into 1% As Needed, 72% Full Time, 22% Part Time, and 5% Contract. Highlights an 91% Physical, 2% Hybrid, and 7% Remote job distribution, with an average salary of $161,189 per year, or $77.5 per hour.

Research Informatics Software Engineer

Manhattan, NY โ€ข On-site

$226K/yr

Other

Medical, PTO

Posted 15 days ago


Job description

Overview

Excelsior Sciences is reinventing small-molecule discovery and manufacturing through Blocc chemistryโ€”modular, automation-friendly chemistry designed for machines to execute and AI to learn fromโ€”combined with closed-loop AI learning systems.

Backed by a $70M Series A from Deerfield, Khosla Ventures, and Sofinnova, along with a $25M Empire State Development grant, Excelsior is building a lean, high-leverage organization at the intersection of chemistry, automation, software, and AI. Additional investors include Eli Lilly, Cornucopian Capital, Illinois Ventures, and MIT.

Based at the Cure building in New York City, our goal is to build a chemistry and AI-native discovery platform in which high-quality experimental data continuously feeds learning systems that help determine what to make and test nextโ€”accelerating the cycle of molecular design, experimentation, and discovery.

We are seeking a strong MS Computer Science candidate to join our Research Informatics / R&D IT team. You will help build the digital foundation that enables both scientists and autonomous AI agentsโ€”combining cloudโ€‘native data platforms, vendor LIMS/ELN and analytical systems, robust scientific data pipelines, and agentic AI / LLM capabilities.

This role is ideal for someone with handsโ€‘on experience in cloud, data engineering, RAG/multi-agent systems, high-performance ML, and scientific computing who wants to apply those skills at the intersection of lab informatics and AI-native drug discovery. We leverage AIโ€‘agile software development and engineering practices as we aim to lead the field in advancing molecule discovery efficiently.

What success looks like: Scientific data becomes reliably FAIR and machineโ€‘actionable, enabling both human researchers and AI agents to drive faster closed-loop experimentation and accelerate molecule discovery.

Location / Work Arrangement: New York City with periodic remote flexibility available

ResponsibilitiesKey Responsibilities
  • Integrate, extend, and support vendor Laboratory Information Management Systems (LIMS), Electronic Lab Notebooks (ELN), and analytical informatics platforms. Scope includes platforms such as Genedata, CDD Vault, Virscidian Analytical Studio, and similar systemsโ€”focusing on data models, workflows, APIs, sample/analytical data flows, and connections to instruments and enterprise systems.
  • Design, implement, and maintain scalable data pipelines and APIs that make scientific data (samples, assays, analytical results, automation streams) FAIR, high-quality, and machineโ€‘actionable for both human scientists and AI agents. Leverage modern data platforms, warehouses/lakes, and orchestration tools.
  • Build and operate cloudโ€‘native components (primarily AWS) using containers (Docker/Kubernetes), infrastructure patterns, CI/CD, and workflow orchestration to support lab informatics and AI workloads.
  • Prototype and productionize agentic AI / GenAI solutionsโ€”LLM agents, RAG and GraphRAG systems, multiโ€‘agent workflows, and promptโ€‘engineered / retrieval-augmented pipelinesโ€”that automate or augment laboratory informatics processes, data interpretation, and closed-loop experimentation.
  • Collaborate with research scientists and crossโ€‘functional engineering teams to translate scientific needs into reliable software, data products, and AI capabilities; contribute to documentation, testing, and knowledge transfer.
  • Apply software engineering best practices (agile / AIโ€‘agile delivery, testing, schema design, performance tuning) in a scientific computing context.
  • Support continuous improvement of lab digital systems, including data quality, observability, and readiness for AI agents.
QualificationsBasic Qualifications
  • Masterโ€™s degree in Computer Science (or a closely related field) with relevant coursework in cloud computing and the fundamentals of AI and ML.
  • Demonstrated experience building data pipelines, feature engineering, or scientific data workflows (e.g., Spark/Databricksโ€‘style pipelines, data quality checks, performance tuning).
  • Handsโ€‘on experience with cloud platforms (AWS), containers (Docker/Kubernetes), and modern data/backend tools (SQL, PostgreSQL, orchestration frameworks).
  • Strong proficiency with AI coding assistants and coding agents (e.g., Cursor, Claude Code, GitHub Copilot, or similar tools).
  • Familiarity with LLM concepts, RAG, retrieval, or multiโ€‘agent systems (coursework, projects, or professional exposure).
  • Willingness and aptitude to rapidly learn commercial LIMS/ELN or analytical platforms (e.g., Genedata, CDD Vault, Virscidian Analytical Studio); prior exposure is a plus.
  • Proficiency in Python and SQL; additional experience with C++/C, highโ€‘performance ML tooling, or scientific computing libraries is a plus.
  • Strong collaboration skills and ability to work at the intersection of software engineering, data, and scientific applications.
Preferred Qualifications
  • Practical, handsโ€‘on experience with LLM / agentic AI systems, including RAG, GraphRAG, multiโ€‘agent architectures, or production retrievalโ€‘augmented pipelines.
  • Experience optimizing highโ€‘performance ML or scientific models (e.g., protein structure prediction, surrogate modeling, Bayesian optimization).
  • Handsโ€‘on work with multiโ€‘agent systems, knowledge graphs (Neo4j), or agent frameworks/SDKs.
  • Familiarity with Airflow or Prefect, PyTorch, and related ML/LLM tooling.
  • Direct experience with commercial LIMS/ELN or analytical platforms such as Genedata, CDD Vault, Virscidian Analytical Studio, or similarโ€”especially their data models, APIs, and integration points.
  • Experience with CI/CD, testing, schema design, and productionโ€‘grade software practices.
  • Interest in applying agentic AI and robust data engineering to laboratory and drugโ€‘discovery workflows.

The salary range for this position is $120,000- $160,000 per year. The actual compensation offered will be based on factors such as relevant experience, education, and skills. In addition to base salary, we offer a comprehensive benefits package, including health insurance, paid time off and other benefits.

Excelsior Sciences of New York Is an equal opportunity employer (EEO). We provide equal employment opportunities (EEO) to all employees and applicants for employment without regard to religion, race, creed, color, sex, sexual orientation, alienage or citizenship status, national origin, age, marital status, pregnancy, disability, veteran or military status, predisposing genetic characteristics or any other characteristic protected by applicable federal, state or local law.

Location: New York, NY

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