채용
Required Skills
Python
DevOps
MLOps
Docker
Kubernetes
Azure
CI/CD
Machine Learning
At Danaher, our work saves lives. And each of us plays a part. Fuelled by our culture of continuous improvement, we turn ideas into impact – innovating at the speed of life.
Our 63,000 associates work across the globe at more than 15 unique businesses within life sciences, diagnostics, and biotechnology.
Are you ready to accelerate your potential and make a real difference? At Danaher, you can build an incredible career at a leading science and technology company, where we’re committed to hiring and developing from within. You’ll thrive in a culture of belonging where you and your unique viewpoint matter.
Learn about the Danaher Business System which makes everything possible.
- Danaher’s India Development Center
- IDC is a research and development center with the vision of accelerating product roadmaps across various Danaher business segments. Started in 2014, the center now hosts 700 associates, for multiple Danaher operating companies focusing on Diagnostics, Life Science, and Environmental and Applied Science segments. The operating companies include Beckman Coulter, Radiometer, Leica Biosystems, Digital Teams, Leica Microsystems, Hemo Cue, Phenomenex SCIEX and Cepheid.
The IDC workforce comprises of various product engineering teams, working on development of software and hardware components of cutting-edge products for, Immunoassay, Chemistry, Hematology, Molecular diagnostics, Oncology, Neurosurgery etc,. IDC has evolved as center of excellence for Cloud and data analytics, with significant contributions to the key informatics solutions. The teams consist of highly hardworking software & hardware engineers and development managers. The teams are supported by local Product managers, Quality & Regulatory and Intellectual property specialists.
The inhouse teams works in close coordination with other global R&D centers at US, France, Germany, Japan, Australia, Denmark and Sweden. Located at the center of Bangalore IT HUB, IDC is housed at state of art facility.
As an MLOps (Machine Learning Operations) Engineer, you will be responsible for applying DevOps principles to the machine learning lifecycle, bridging the gap between data science and IT operations. You will design, build, and maintain the infrastructure and automated pipelines that allow machine learning models and complex bioinformatics workflows to be trained, benchmarked, deployed, and monitored efficiently and reliably for internal R&D purposes and production.
In this role, you will have the opportunity to:
- Develop deep expertise to code, debug, and optimize complex Valohai workflows. Implement and debug workflow scripts per data scientist specs (e.g. in Next Flow, Argo, Valohai, etc environments).
- Manage Azure environment. Also will have responsibility of working with IT and Privacy & Security team to manage the envirnoments. Manage scalable infrastructure for ML workloads using cloud platforms, containerization (Docker), container orchestration (Kubernetes), and Valohai configuration. Code in Python to optimize and debug pipelines.
- Collaborate with data scientists and machine learning engineers to ensure models are production-ready and to manage model versions and artifacts. Deploy models into production, e.g. using REST APIs, and manage their lifecycle from staging to production.
- Develop and implement CI/CD pipelines specifically for machine learning models, automating the entire workflow from training and testing to deployment and monitoring. Establish and maintain a robust monitoring and observability framework for deployed models, tracking key metrics like accuracy, latency, and data drift.
- Ensure the reliability, security, and scalability of all ML systems in production. Implement version control for data, code, and models to ensure reproducibility and governance. Troubleshoot and optimize performance for distributed systems and AI workloads, including GPU utilization.
Essential requirements of the job include:
- Bachelor’s or Master degree in Computer Science, Engineering, Information Technology, or a related field with an experience of 8 years in Dev
Ops and MLOps:
- Proven experience as an MLOps, DevOps, or ML platform engineer, with experience in deploying and managing ML models. Proficiency in programming languages like Python and familiarity with ML frameworks (e.g., Tensor Flow, Py Torch, Scikit-learn).
- Strong experience with cloud platforms such as AWS, Google Cloud (GCP), or Azure. Hands-on experience with containerization technologies, such as Docker, and orchestration platforms like Kubernetes.
- Experience with CI/CD tools (e.g., GitHub Actions, Jenkins, GitLab CI) and automation. Familiarity with ML lifecycle management tools such as MLflow, Kubeflow, or Sage Maker. Understanding of data engineering concepts, including ETL processes and data pipeline orchestration. Familiarity with monitoring, logging, and alerting tools for production systems
It would be a plus if you also possess previous experience in:
- Model observability and experiment tracking (e.g., MLflow, Weights & Biases, Kubeflow).Infrastructure as Code and environment reproducibility (e.g., Terraform, Helm).
- Security and compliance practices for ML systems (e.g., secrets management, least-privilege access, secure endpoints). GenAI/LLM operations, including RAG pipelines, vector databases, and model serving frameworks
Join our winning team today. Together, we’ll accelerate the real-life impact of tomorrow’s science and technology. We partner with customers across the globe to help them solve their most complex challenges, architecting solutions that bring the power of science to life.
For more information, visit www.danaher.com.
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About Danaher

Danaher
PublicDanaher Corporation is an American healthcare company headquartered in Washington, D.C.. It develops products used for advances in biotechnology, life sciences, and diagnostics.
10,001+
Employees
Bangalore
Headquarters
Reviews
3.0
10 reviews
Work Life Balance
2.0
Compensation
3.2
Culture
2.3
Career
2.8
Management
1.8
25%
Recommend to a Friend
Pros
Good benefits and 401K match
Cross functional collaboration opportunities
Learning and development programs
Cons
High turnover and frequent layoffs
Poor leadership and management decisions
Below average pay for industry
Salary Ranges
21 data points
Junior/L3
Senior/L5
Junior/L3 · BI Developer
1 reports
$166,129
total / year
Base
$127,793
Stock
-
Bonus
-
$166,129
$166,129
Interview Experience
1 interviews
Difficulty
1.0
/ 5
Duration
14-28 weeks
Experience
Positive 0%
Neutral 0%
Negative 100%
Interview Process
1
Application Review
2
HR Screen
3
Hiring Manager Interview
4
Skills Assessment
5
Final Interview
6
Offer
Common Questions
Administrative Skills
Behavioral/STAR
Past Experience
Software Proficiency
Time Management
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